Showing posts with label Actually. Show all posts
Showing posts with label Actually. Show all posts

Saturday, September 2, 2017

Watch Out For Medications That Actually Cause Neuropathy Themselves!


Today's post from medmerits.com (see link below) is highly technical and mentions many drugs you may never have heard of but is nevertheless a very useful article. If only more experts in the field exposed dangerous drugs in this way, many people might be spared the agonies of neuropathy. However, that is easier said than done and when you think of the complexity of the drugs we use for all other conditions, it's maybe little wonder that, despite their effectiveness in treating the main target problem, one of their side effects can be nerve damage. That said, it's the job of pharmaceutical companies and doctors to protect us (or at least warn us) from hidden side effects but sometimes, the achievement of success in treating one problem can be enough to forgive the emergence of another. Take chemotherapy as one glaring example: without it the cancer may not be tackled but with it comes a significant risk of neuropathy - sometimes it's a question of which is the greater evil/benefit. In war they call it 'collateral damage'. What this detailed article does tell us is that it's always important to check and know the chemical name of the drugs we are taking, because the brand names often hide a multitude of sins, If you use various trustworthy drug interaction check sites, you will need to know the drug's proper name in order to be able to check all its potential interactions and side effects. Unfortunately, most people with neuropathy also have other medical issues and are being treated for those as well, so it's vital to be able to trust any drug combinations and at least be forewarned of any possible problems.

Drug-induced neuropathies
By Louis H Weimer MD Etiology Article section 4 of 11. 

No broad etiology or pathogenic mechanism has been suggested, but isolated cases may be part of an acute hypersensitivity reaction (Glyn and Crofts 1966). Most of the potentially pathogenic mechanisms in this section are speculative.

Specific agents.

Allopurinol. Allopurinol has been used for the treatment of gout since its approval in 1966. Allopurinol inhibits the enzyme xanthine oxidase, which blocks the metabolism of hypoxanthine and xanthine (oxypurines) to uric acid, interfering with the catabolism of purines. A number of cases of neuropathy have been associated with this agent in reports with various strengths of association (Glyn and Crofts 1966; Worth and Hussein 1985; Azulay et al 1993). The initial description included a hypersensitivity reaction with later drug rechallenge with a subsequent repeat allergic reaction, which included symptoms and signs of peripheral neuropathy. The patient also received colchicine after symptom onset with unclear timing related to neuropathy onset. Symptoms improved but persisted after cessation (Glyn and Crofts 1966). Fewer than 10 cases have been noted in the literature with at least 2 cases having complicating issues (uremia). The most recent report included some electrophysiologically and pathologically demyelinating features (Azulay et al 1993). These features were not previously noted, and regression occurred after drug cessation. Most cases occur after several or many years of therapy. No predisposition or ancillary factors are currently known. No experimental evidence supports the association, making this a possible, but not a definite, rare idiosyncratic association. In fact, the agent has been used to preserve nerve and vascular function in streptozotocin-induced diabetic neuropathy in rats (Inkster et al 2007). Inhibition of xanthine oxidase produced reactive oxygen species is the suspected beneficial effect. Blood flow declines caused by the experimental diabetes were also partially corrected.

Almitrine. Almitrine bismesylate is not FDA approved for use in the United States, but it is available in many other countries for treatment of chronic obstructive pulmonary disease and some vascular disorders including stroke prophylaxis. Almitrine acts as a peripheral chemoreceptor agonist. The component is noteworthy because it appears to commonly induce a predominantly sensory neuropathy. In 1 small placebo controlled study of 7 controls and 5 treated chronic obstructive pulmonary disease patients, 3 of 5 treated patients and none of the controls developed significant neuropathy (Allen and Prowse 1989). Bouche and colleagues reported 46 cases of almitrine-associated neuropathy in one series (Bouche et al 1989). The range of onset described is 9 to 25 months after medication onset. Sensory symptoms restricted to distal legs involving all modalities are typical. Electrophysiology and nerve biopsy findings were consistent with sensory axonopathy (Gherardi and Baudrimont 1987; Petit et al 1987). Improvement is described in most cases and is usually complete after a year (Bouche et al 1989). Numerous other reports have been made that support the high incidence of neurotoxicity with this agent (Louarn 1985; Blondel et al 1986; Petit et al 1987; Allen 1988; Wouters et al 1988; Allen and Prowse 1989; Gherardi et al 1989). Small placebo control studies have reported variable, but significant, percentages of patients stopping trials because of neuropathic symptoms. Gherardi and colleagues have reported nerve biopsy and ultrastructural studies of 8 cases. The primary finding is axonal loss of large myelinated fibers with signs of regeneration in 1 delayed biopsy. In addition, signs including segmental demyelination on teased fiber preparations suggested a demyelinating component in a variable percentage of fibers. No animal studies are available for consideration. No predisposing conditions are known. Moreover, the severity of hypoxemia from the pulmonary disease does not appear to correlate with the appearance of neuropathy or subsequent improvement after cessation. One series did describe a shorter latency to neuropathy onset in chronic obstructive pulmonary disease versus vascular patients, but most were receiving higher doses. However, some additional neuropathological signs seen in isolated cases (microangiopathy) could be secondary to chronic hypoxemia. Weight loss is commonly associated with the appearance of neuropathy. Some studies using a lower dosage (< 100 mg/day) have shown no significant neuropathy, including electrophysiologic changes (Weitzenblum et al 1992). Recent series have reported no dropout due to neuropathy of patients who used similar dosages, but these series are without specific methods to detect sensory loss.

Amitriptyline. Amitriptyline is a useful drug in the treatment of painful conditions including peripheral neuropathy, especially conditions with marked small fiber mediated pain involvement. However, several reports have associated this agent and, even more rarely, other tricyclic antidepressants including imipramine with inducing peripheral neuropathy (LeWitt and Forno 1985; Leys et al 1987). Many of the cases described are in the setting of overdose with other complications including rhabdomyolysis and cholinergic effects on the CNS and periphery; however, a small number have described suspected neuropathy on conventional amitriptyline dosages with improvement after cessation (Isaacs and Carlish 1963; Nimmo Smith and Grieve 1963; Zampollo et al 1988). There is limited experimental evidence of ultrastructural lesions in cultured neurons and astrocytes, but this relation to human toxicity is speculative at best and has not altered use in patients with neuropathy.

Chloroquine. Chloroquine is an agent used to treat malaria prophylaxis and some autoimmune conditions. The primary neuromuscular complication is a vacuolar myopathy, which can be fulminant (Siddiqui 2007); however, rare cases of neuropathy with demyelinating features and axonal loss have been described (Wasay et al 1998; Stein et al 2000). Onset is typically 1 to 2 years after starting medication and involves both sensory and motor fibers. Severity is not typically marked. Schwann cells have shown dense and laminar cytoplasmic inclusions similar to those seen with amiodarone and perhexiline, notable other causes of demyelinating toxic neuropathy. Sural biopsies have shown axonal loss and segmental demyelination and remyelination (Tegner et al 1988). Electrodiagnostic studies have also suggested a neurogenic component superimposed on the predominant myopathy. Some have noted the pattern could mimic a polyradiculopathy. This effect has been reproduced in rats.

Cyclosporin. Cyclosporin A has been used as an immunosuppressive agent in numerous conditions including organ transplantation and even some cases of immune mediated neuropathy. Limited information has associated cyclosporin A with otherwise unexplained peripheral neuropathy. The evidence rates this agent at best as a possible, but not probable, causative agent at present (Blin et al 1989; Chan et al 1996).

Dichloroacetate.
Dichloroacetate is used experimentally to treat chronic lactic acidemia from mitochondrial diseases. Peripheral neuropathy is common with chronic dichloroacetate treatment. Clinical and electrophysiologic signs of sensorimotor neuropathy are found (Spruijt et al 2001; Anselm and Darras 2006; Kaufmann et al 2006). The neuropathy is significant but can be reversible over months if the drug is stopped. Neuropathy also develops in younger children with lactic acidosis but was said to be tolerated by most in one trial of 36 impaired children (Stacpoole et al 2008). The neurotoxic mechanism is not fully known, but the agent causes reversible demyelination in cultured rat Schwann cells and dorsal root ganglia neurons exposed to dichloroacetate for up to 12 days (Felitsyn et al 2007). The heme precursor delta-aminolevulinate is implicated in neurologic complications associated with porphyria and tyrosinemia type I. The compound is elevated in the urine of animals and humans on dichloroacetate and appears to damage Schwann cells in part by reducing the levels of myelin-associated lipids and proteins, including myelin protein zero and peripheral myelin protein 22 (Felitsyn et al 2008). It is currently unclear but suspected that patients with mitochondrial encephalopathy, lactic acidosis, and stroke-like episodes (MELAS) may be at increased risk of developing the toxic neuropathy. The drug is also under investigation in the treatment of glioblastoma multiforme. Dichloroacetate may help minimize treatment resistance mediated by changes in mitochondria that reduce cancer cell apoptosis in part by a switch from mitochondrial oxidative phosphorylation to cytoplasmic glycolysis. However, studies in humans have been limited by dose-dependent peripheral neuropathy (Michelakis et al 2010).

Glutethimide. Glutethimide is a sedative-hypnotic agent originally used as an ethanol substitute, but it proved to be highly addictive in its own right. The compound was reclassified as schedule II and withdrawn from general availability in 1991. Chemically, the compound is structurally similar to thalidomide, an agent that more commonly induces sensory neuropathy. Rarely, neuropathy has been associated with chronic glutethimide use at high doses (Nover 1967; Haas and Marasigan 1968). Cerebellar ataxia is also described and may be marked and persistent. Manifestations are predominantly but not exclusively sensory and are supported by limited electrodiagnostic data. Improvement or resolution over ensuing months is described. No experimental evidence or nerve biopsy data are available for correlation.

Ixabepilone. The epothilones are a new class of chemotherapeutic agent with currently low tumor resistance. The class includes the natural agents, epothilone B (patupilone) and epothilone D, which are not yet FDA approved as well as the semisynthetic analog, ixabepilone (Bhushan and Walko 2008; Swain and Arezzo 2008); ixabepilone was FDA approved in October 2007. Breast cancer is the primary indication, but phase II studies are completed or are ongoing for a variety of cancer types. The group binds to tubulin similarly to certain other chemotherapeutic agents, such as vinca alkaloids and taxanes, but at differing binding sites. Similar to taxanes, the drugs promote dysfunctional stabilization of microtubules but with a differing mechanism, in contrast to microtubular destabilizing agents such as vincristine, colchicine, and podophyllotoxin (Cortes and Baselga 2007). Peripheral neuropathy from ixabepilone is a major dose-limiting side effect. Mild-to-moderate (grade 1 to 2), predominately sensory neuropathy that improves or resolves is most common, but more severe grades (grade 3) occur rarely in monotherapy and at rates of 10% to 15% with combination therapy or in patients previously exposed to taxanes or capecitabine; grade 4 neuropathy appears to be very rare (Denduluri et al 2007; Perez et al 2007; Roche et al 2007; Thomas et al 2007a). Dose reduction may be adequate in many, but treatment discontinuation occurs as well; more dispersed treatment protocols may have lesser toxicity (Thomas et al 2007b). Twenty-one percent of patients treated with ixabepilone plus capecitabine discontinued treatment because of sensory neuropathy in one large phase III trial (Thomas et al 2007b). Severity increases with cumulative dosing, especially after an average of 4 treatment cycles. The overall neuropathy incidence varies depending on dose and coincident treatments but is as high as 67%. The reported reversibility of sensory neuropathy is surprising considering the experience with other microtubule targeting agents such as vincristine and taxanes. One patient is reported who developed significant weakness associated with neuropathy after 1 treatment cycle (Bosch-Barrera et al 2009). Review of all phase 2 and phase 3 clinical trials found a 1% incidence of severe neuropathy in patients previously untreated and up to 24% of breast cancer patients treated with other agents (Vahdat et al 2012). Carefully monitoring for neuropathy and timely dose adjustment or treatment discontinuation is advocated depending on the neuropathy severity (Swain and Arezzo 2008). Neuropathy is increasingly recognized as a dose-limiting side effect and 20% dose reduction is one proposed strategy (Valero 2013). This entity is also discussed in the section on chemotherapy-induced neuropathy.

Leflunomide. The immunosuppressive prodrug leflunomide was FDA approved in late 1998 as a disease-modifying rheumatoid arthritis treatment. It was subsequently recognized that an axonal, sometimes painful, sensorimotor polyneuropathy is associated with leflunomide (Carulli and Davies 2002; Bonnel and Graham 2004; Metzler et al 2005). Eighty cases reported to the FDA were uncovered and described (Bonnel and Graham 2004). After this report, additional series have been reported identifying numerous additional probable cases (Bharadwaj and Haroon 2004; Martin et al 2005; Kho and Kermode 2007). Bharadwaj and Haroon describe 150 prospectively tracked rheumatoid arthritis patients in India. Fifty received leflunomide either as monotherapy or in combination with other drugs. Five developed new neuropathy (10%) in contrast to 2 of 100 receiving other treatments (2%). Nerve biopsy in 3 demonstrated epineural perivascular inflammation around small and medium-sized arterioles patchily affecting large and small myelinated nerve fibers suggesting a predominant axonopathy with features of vasculitis. All showed clinical improvement and were said to become asymptomatic within 3 months, but residual nerve conduction abnormalities remained (Bharadwaj and Haroon 2004). Kopp and colleagues describe a case and suggest a potential interaction between 5-FU and leflunomide and include the possible mechanism (Kopp et al 2005). Onset is usually after 3 to 6 months of drug use, although symptoms may appear sooner. Another study compared 16 rheumatoid arthritis patients treated with leflunomide with 16 others receiving alternative disease-modifying therapies. Neuropathy symptoms scores increased in 54% of the leflunomide group compared with 8% of the others; however, electrophysiology did not correlate with clinical symptoms (Richards et al 2007). Stopping therapy within 30 days of symptom onset gives a better chance of improvement, though recovery is typically slow. Sural nerve biopsies have shown nonspecific axonal loss in most, but signs of perivascular inflammation have been described. Primary rheumatoid arthritis is an independent neuropathy risk factor often associated with vasculitis, but leflunomide reports have not generally described this type of pattern. Neuropathy incidence is higher than with rheumatoid arthritis alone or with other rheumatoid arthritis medications. One retrospective analysis found increased associated neuropathy risk with increasing age, diabetes, and the use of other potentially neurotoxic medication (Martin et al 2007). The mechanism of neurotoxicity is not known; neuropathy cases were not detected in clinical trials. The drug remains an effective treatment and efficacy appears to be similar to methotrexate and better than sulfasalazine. However, withdrawal rates are higher than methotrexate because of toxicity; peripheral neuropathy is one of several forms of toxicity (Alcorn et al 2009). Comparison of 94 rheumatoid arthritis patients treated with either leflunomide or other disease modifying agents found significant differences in quantitative cold but not vibration perception measures; leflunomide-treated patients were roughly twice as likely to have increased cold perception measures (Kim et al 2012).

A similar agent, teriflunomide, is now approved in the United States to treat multiple sclerosis. Paresthesia and peripheral neuropathy are associated with this agent as well but the neuropathy risk and incidence are not yet known. Clinical trial data suggest an incidence of 1% to 2%, but no aftermarket reports of significant neuropathy cases are known.

Lipid-lowering agents. The statin-class of cholesterol medications acts by inhibiting the rate-limiting step in cholesterol synthesis, hydroxymethylglutaryl coenzyme A (HMG CoA). The predominant neuromuscular complication with these agents is a toxic myopathy referred to as cholesterol-lowering agent myopathy, which is well appreciated by physicians and patients. An increasingly recognized acute necrotizing myositis with rhabdomyolysis associated with antibodies against the HMG CoA enzyme can develop. However, a number of cases of peripheral neuropathy temporally associated with conventional doses of simvastatin and other agents in the class have been reported (Jacobs 1994; Ahmad 1995; Phan et al 1995; Ziajka and Wehmeier 1998; Jeppesen et al 1999; Lo et al 2003). Partial or complete recovery after drug cessation is described. One report described sural biopsy data demonstrating small and large fiber axonal loss (Phan et al 1995). Several cases have serial electrophysiological studies showing sensorimotor axonal neuropathy with variable levels of subsequent improvement. No experimental model to support the effect is known. Symptom onset has been described within days to as long as several years after onset. One case described neuropathy onset after several years of treatment with lovastatin; when treatment stopped, the condition improved (Ziajka and Wehmeier 1998). Rechallenge with pravastatin, simvastatin, and later atorvastatin each caused a subacute recurrence of burning dysesthesias that improved with cessation. Similar rapid worsening with rechallenge has been noted in other reports. One speculative mechanism proposed is that inhibition of mitochondrial hydroxymethylglutaryl coenzyme A reductase causes a subsequent decrease of ubiquinone synthesis, which potentially may disturb neuronal energy utilization (Walravens et al 1989).

Thus, only the temporal association with the neuropathy development and subsequent improvement was available to support a causative link until a case control study reported by Gaist and colleagues (Gaist et al 2002). Gaist and colleagues suspected a possible link between these agents and cases of idiopathic neuropathy, despite an earlier negative United Kingdom study (Gaist et al 2001). They then conducted a much larger population-based study in 1 Danish county (465,000 inhabitants) and cross referenced a prescription registry to a national patient diagnosis registry from 1994 to 1998, when statin use in Denmark increased from 11,547 to 50,318 nationwide. Gaist and colleagues identified 1084 registered patients with a diagnosis of polyneuropathy. They excluded 492 with onset prior to 1994 or concurrent cause of neuropathy (diabetes, renal failure, monoclonal gammopathy, etc.). Only cases with clinical signs of distal, symmetric neuropathy and an adequate workup including electrodiagnostic studies were analyzed and categorized as definite, probable, or possible idiopathic neuropathy. Twenty-five controls were randomly chosen per index case. Thirty-five definite, 54 probable, and 77 possible neuropathy cases from the registry (166 total) were found. Nine had been exposed to statins including simvastatin, pravastatin, lovastatin, and fluvastatin. Odds ratios were calculated as 4.6% overall with current users of statins compared to controls and 16.1% with definite neuropathy cases compared to controls. The researchers also calculated an interesting number needed to harm measure and found, based on their odds ratios, 1 excess case of idiopathic peripheral neuropathy for every 2,200 person-years of statin use. Considered in this way, neuropathy was suggested as a more important public health concern than myopathy in patients taking statins. However, potential pitfalls complicate the study, such as whether all symptomatic neuropathy causes were in fact excluded. Examples of complicating disorders include conditions associated with statin use, such as occult diabetes, glucose intolerance, or metabolic syndrome. (Donaghy 2002); however, not all series found a clear association with statins and idiopathic neuropathy (Anderson et al 2005). Despite the rarity of the association, the large number of patients who take these medications makes the association potentially clinically relevant. Further uncertainty was raised in 2007 by the announcement at the meeting of the American Diabetes Association of the large 8-year long Australian Fremantle study of nearly 1300 diabetic patients that demonstrated significantly decreased risk of developing neuropathy in patients treated with statins or fibrates compared to untreated patients. The reduction was 35% and 48%, respectively (Davis et al 2008). Experimental evidence suggests that the statin rosuvastatin improves a mouse model of diabetic neuropathy through improved microcirculation independent of cholesterol lowering effects (Ii et al 2005). The combination of studies and evidence challenges the importance of the earlier Gaist results; statin neuropathy likely occurs but may be much less frequent than recently thought and appears to be neuroprotective in some settings.

One possible case following initiation of simvastatin rapidly developed into neuropathy mimicking Guillain-Barré syndrome; a pravastatin challenge 6 months earlier had led to milder symptoms. The combination suggested a possible hypersensitivity reaction (Rajabally et al 2004). In contrast, lovastatin attenuated nerve injury in an experimental model of experimental allergic neuritis. The effect was blocked by mevalonate (Sarkey et al 2007).

There is no supportive experimental model of the potentially toxic effects, but alteration of membrane function though inhibition of cholesterol synthesis, reduction of axon transport, and inhibition of mitochondrial function have been suggested as possible factors. Interference with selenoprotein synthesis, a well-established pathway also implicated in some hereditary muscle disorders, has been postulated to be causative but probably relates better to myotoxicity. Myopathy from severe selenium deficiency shares some features with statin-induced myopathy (Moosmann and Behl 2004).

Lithium. Lithium has been associated with neuropathy in rare cases. Isolated reports describe the onset of typical toxic neuropathy manifestations after prolonged exposure (Tomasina et al 1990); however, most reports are after acute intoxication or overdose (Brust et al 1979; Uchigata et al 1981; Pamphlett and Mackenzie 1982; Chang et al 1988; Vanhooren et al 1990; Johnston et al 1991; Merwick et al 2011; Chan et al 2012). Excessive levels can occur due, in part, to the narrow therapeutic range of the drug; moreover, neuropathic findings may be underrecognized. Some reported cases are complicated by more generalized toxicity including cerebral impairment with the neuropathy becoming evident only with subsequent recovery. Secondary infections are also problematic, raising the issue of critical illness neuromyopathy in some instances. No convincing experimental evidence is known other than an isolated report suggesting a tendency toward reduced nerve fiber area in rats chronically given lithium over control animals (Licht et al 1997). In fact, in a small series, lithium has been reported to blunt the symptoms of vincristine-associated neuropathy in both mice and humans (Petrini et al 1999). More recently, lithium pretreatment was found to attenuate neuropathy in paclitaxel-treated mice possibly by interacting with paclitaxel-related intracellular calcium signaling pathways (Mo et al 2012).

Phenelzine. Phenelzine is a rarely used monoamine oxidase inhibitor for atypical or refractory depression. Side effects such as hypertensive crises and serious reactions with other agents are well known. Rarely, this agent (but not other MAOIs) has been implicated in inducing peripheral neuropathy. Phenelzine has been shown to affect pyridoxine metabolism and reduce measurable active pyridoxal phosphate levels in humans (Malcolm et al 1994). The compound is in the same chemical class as hydralazine and isoniazid, which both reduce pyridoxal phosphate levels and can cause peripheral neuropathy. Whether this effect is clinically relevant remains to be seen. Malcolm and colleagues demonstrated pyridoxal phosphate levels reduced, on average, by half in 19 patients on phenelzine, but none developed clinical symptoms (Malcolm et al 1994). Several reports of neuropathy associated with phenelzine have been published (Heller and Friedman 1983; Goodheart et al 1991). The neuropathy is described as a typical toxic neuropathy with sensorimotor axonal involvement with predominantly sensory manifestations.

Phenytoin. Peripheral neuropathy from chronic phenytoin use has been long recognized and generally accepted. However, despite many reported patient series, the phenomenon is based on relatively few uncomplicated prospective studies. Most likely, there is a probable effect of protracted use, especially with serum levels chronically higher than 20 µg/ml (in excess of the standard therapeutic range). Peripheral neuropathy was more commonly seen early in the history of phenytoin use when doses of 500 mg/day or higher were not uncommon. However, many of the earlier series had relatively few patients on phenytoin monotherapy, and the contributions of acute reversible phenomena were not taken into account. At current dosages with monitored serum levels, peripheral neuropathy is rare and typically produces only asymptomatic examination findings or minimally discernible neuropathy after many years of therapy. The incidence of neuropathy in epileptics on phenytoin varies considerably depending on patient populations and criteria employed (Lovelace and Horwitz 1968; Eisen et al 1974; Swift et al 1981; Shorvon and Reynolds 1982; Taylor et al 1985). Several variables have been proposed as risk factors for neuropathy development, including supra-therapeutic serum levels (greater than 20 µg/ml), protracted use (less than 10 years), and low folate levels (Lovelace and Horwitz 1968; Eisen et al 1974; Chokroverty and Sayeed 1975; Shorvon and Reynolds 1982). Other series have not found any significant association with phenytoin use compared with other anticonvulsants or these risk factors (Swift et al 1981; Taylor et al 1985). Swift and colleagues found signs of neuropathy in epileptic patients on various therapies and showed a higher incidence among patients on phenobarbital (Swift et al 1981). One case with long-term chronically elevated serum levels (31 to 38.5 µg/ml) had clinically symptomatic neuropathy, and sural nerve biopsy demonstrated mild decreases in large diameter axonal number, axonal shrinkage, and secondary demyelination (Ramirez et al 1986). This patient improved clinically and on electrophysiologic studies subsequent to phenytoin cessation.

In addition, there appears to be separate acute effects on nerve function. Acute exposure to high-dose phenytoin causes reversible slowing of nerve conduction velocity. Phenytoin affects sodium permeability across neuronal membranes by stabilizing inactive sodium channels (Macdonald 1994). Phenytoin in myelinated nerve preparations produces a voltage-dependent block of sodium channels, a shift of the sodium channel inactivation curve to more negative voltages, and a reduced rate of sodium channel recovery from inactivation (Schwarz 1989). However, carbamazepine produced some of these effects as well. Several animal studies have examined the effects of phenytoin on peripheral nerve function. Acute reversible effects have been produced with reduced conduction velocity and compound motor action potentials with acute high dose phenytoin administration in rats (Marcus et al 1981) and slow velocity after several days in guinea pigs (LeQuesne et al 1976). Serum levels were higher than 50 µg/ml. This reversible phenomenon likely represents a physiologic effect but is not a model of long-term toxicity. Some degree of acute reversible effects may have complicated some prior studies that examined chronic toxicity on high dose therapy. A human report has described similar reversible symptomatic effects 3 hours after a phenytoin loading dose (Yoshikawa et al 1999). This may represent an additional acute or subacute idiosyncratic syndrome, but a separate syndrome is not well established. The acute reversible effects on nerve function are well established, but the chronic neuropathy is considered a probable association (Mann et al 2000).

Proton pump inhibitors. A rare effect of commonly used medications can be particularly problematic to resolve and substantiate. One example is the proton pump inhibitors omeprazole and lansoprazole. Rajabally and Jacob reported a 42-year-old woman who developed predominantly sensory neuropathy after 3 months of lansoprazole use (Rajabally and Jacob 2005). Some partial improvement was noted after later stopping the medication, and no worsening was seen after switching to rabeprazole and then to ranitidine. Three other cases are reported with omeprazole, 2 of which have adequate electrophysiology and clinical information (Faucheux et al 1998). Additional carefully studied examples are needed to further substantiate this possible link with medication-induced neuropathy in this widely used class of medications. No new cases have been published as of the most recent literature search since these reports despite continued widespread use of these agents. However, these agents and histamine-2 blockers may affect vitamin B12 absorption and lead to secondary neurologic complications (Lam et al 2013).

Slaughterhouse workers progressive inflammatory neuropathy.
Although not technically a medication-induced neuropathy, this local toxic epidemic at several pork processing plants in Minnesota and surrounding states produced considerable activity and investigation by numerous researchers, mostly at the Centers for Disease Control (Centers for Disease Control and Prevention (CDC) 2008). Twelve workers in a swine slaughterhouse in Minnesota developed a progressive inflammatory neuropathy with symptoms ranging from acute paralysis to gradually progressive symmetric weakness predominantly in the legs from 8 to 213 days with varying severity between November 2006 and 2007. Eleven patients had evidence of axonal or demyelinating features by electrodiagnostic testing. Spinal fluid from 7 patients showed elevated protein (mean 120 mg/dl) with no or minimal pleocytosis. Ten patients had evidence of inflammation on spinal magnetic resonance imaging (9 patients in peripheral nerves or roots and 1 patient in the anterior spinal cord). Three patients with sural nerve biopsy showed mild perivascular inflammation. In summary, patients were characterized with a sensory greater than motor polyradiculopathy, predominantly at the root or distal nerve level. The CDC researchers identified that all patients were working in close proximity to swine heads. A compressed air device used to liquefy porcine brain material may have generated aerosolized brain material, which may have induced an immune neurotoxic response. Ultimately work at the Mayo Clinic led by Vanda Lennon found a complex autoantibody profile dominated by neural cation channel IgGs that most significantly affected voltage-gated potassium channels (Meeusen et al 2012).

Tacrolimus. Prograf, previously known as FK-506, is a novel immunosuppressant that is widely used in transplant medicine and for suppression of some inflammatory disorders. The agent is a macrolide antibiotic that suppresses both cellular and humoral mediated immune responses. Neurotoxicity is common in treated patients, in part, because of the relatively high doses usually given. Central toxicity is more common with a variety of findings including leukoencephalopathy, seizures, behavioral changes, headache, or other cortical signs, many of which are dose dependent. Peripheral neuropathy appears to take the form of a severe multifocal demyelinating neuropathy that resembles chronic inflammatory demyelinating neuropathy (Wilson et al 1994; Bronster et al 1995; Labate et al 2010). Patients have responded to IVIG or plasmapheresis as well.

Both cyclosporin A and tacrolimus act through inhibition of calcineurin, though by different means (tacrolimus binding protein: FKBP-12) (Snyder et al 1998). The calcineurin inhibition, through several steps, decreases IL-2 and eventually T-cell proliferation. This pathway is also the likely cause of much of the central neurotoxicity and possibly the peripheral effects. Tacrolimus also has an additional separate function through a different binding protein, FKBP-52, that acts as a nerve stimulator, increases growth associated protein (GAP-43), and is beneficial to nerve regeneration in nerve axotomy and ischemia models (Gold et al 1998; Kihara et al 2001). FKBP-52 is part of a steroid receptor complex and may represent a target for future regenerative therapies separate from the growth factor and Trk pathways. The mechanism of why, in some patients, an immune attack that resembles chronic inflammatory demyelinating neuropathy or other autoimmune neuropathy is unclear; however, the number of reported examples is small. Interestingly, tacrolimus has also been shown to have significant and potentially therapeutic neuroregenerative activity, possibly derived from a separate pathway from the immunosuppressive calcineurin inhibition--FKBP-52 binding protein (Kvist et al 2003; Gold et al 2004). Schwann cells may play an important intermediary role (Birge et al 2004). A similar agent, sirolimus, appears to have less risk of this reaction but at least 1 case is reported (Bilodeau et al 2008).

Tumor necrosis factor-alpha blockers. Tumor necrosis factor-alpha (TNF-alpha) blockers are used in the treatment of various forms of inflammatory arthritis and inflammatory bowel diseases but are also associated with inducing or worsening other autoimmune disorders including multiple sclerosis (Stubgen 2008). One agent (etanercept) has been reported to improve chronic inflammatory demyelinating neuropathy (CIDP) (Latov and Sherman 2000; Chin et al 2003). Postmarketing reporting identified 15 patients diagnosed with Guillain-Barré syndrome or Miller Fisher syndrome from 6 weeks to 2 years after starting a TNF-alpha blocker, although associated infection may be a more important risk factor (Robinson et al 2001; Shin et al 2006). One case developed acute sensorimotor neuropathy and concomitant encephalopathy (Faivre et al 2010). Richez and colleagues reported 2 cases that developed a CIDP-like illness (Richez et al 2005). One treated with etanercept for rheumatoid arthritis developed a demyelinating neuropathy 17 months later. The other received infliximab for ankylosing spondylitis and developed CIDP 3 months later. Both incompletely improved after drug cessation without specific treatment for CIDP. Infliximab is also associated with several other CIDP-like cases with underlying rheumatoid arthritis (Jarand et al 2006; Tektonidou et al 2007; Alshekhlee et al 2010) and 3 cases with underlying psoriatic arthritis, a condition which is much less likely to induce spontaneous or vasculitic neuropathy (Stubgen 2008; Eguren et al 2009). Numerous cases resembling multifocal motor neuropathy are also reported in association with infliximab (Singer 2004; Cocito et al 2005; Rodriguez-Escalera et al 2005; Paolazzi et al 2009). However, others question whether some of these cases were actually a form of vasculitic mononeuritis multiplex triggered by the infliximab (Birnbaum 2007). One case of proposed infliximab-associated immune-mediated sensory polyradiculopathy was successfully treated with intravenous gammaglobulin (Naruse et al 2013). There are additional less clear associations with mononeuropathy and axonal sensory or sensorimotor neuropathy (Jarand et al 2006). In any event, it seems that infliximab and etanercept can contribute to or trigger an immune-mediated neuropathy in some possibly susceptible patients (Kotyla et al 2007). Adalimumab is not clearly associated with chronic neuropathy but was associated with one possible Guillain-Barré syndrome case. Ipilimumab, a monoclonal antibody that is not a TNF alpha antagonist but instead blocks a natural inhibitor of cytotoxic T-cell response to cancer cells, is approved to treat melanoma and is undergoing trials for other cancer types. A case of acute neuropathy mimicking Guillain-Barré syndrome is reported; acute enteric neuropathy is also recognized (Gaudy et al 2013).

Interestingly, in light of the fluoroquinolone story discussed earlier, peripheral neuropathy associated with TNF-alpha agents was the most common adverse neurologic event reported to the Food and Drug Administration Adverse Event Reporting System (296 reports, 38.3%), exceeding central nervous system and/or spinal cord demyelination (153 reports, 19.8%) (Deepak et al 2013). The majority of reports (71%) were labeled as “possibly associated” and not higher grades of certainty.

In contrast, these agents may have other protective properties. A mouse model of bortezomib neuropathy found that upregulation of TNF-alpha was neuroprotective, possibly by limiting certain inflammatory cytokines (Ale et al 2014).

Zimeldine. Zimeldine is another agent never approved for use in the United States but available transiently as an antidepressant in Sweden, functioning as a 5-HT reuptake inhibitor with purported fewer side effects. The drug is best known as a probable precipitating factor of an outbreak of Guillain-Barré syndrome in Sweden in 1983. The drug was withdrawn from the market 18 months after introduction because of this outbreak. A subsequent Bayesian analysis concluded that the association was supported by relevant data (Naranjo et al 1990). No additional cases, however, were identified in a retrospective review of 761 patients on zimeldine reported more recently from the same region (Bengtsson et al 1994). Hypersensitivity reactions are relatively common with this agent (1.4% to 13%), raising the question of potential immune-mediated mechanisms in this phenomenon. Zimeldine appears to affect T-cell function and blunt experimental allergic neuritis in a rat model of Guillain-Barré syndrome (Bengtsson et al 1992). The risk of developing Guillain-Barré syndrome from zimeldine was estimated as increased 25-fold compared to natural incidence controls (Fagius et al 1985).

http://www.medmerits.com/index.php/article/drug_induced_neuropathies/P3

Sunday, August 20, 2017

What Actually Causes Neuropathy


Irrespective of whether you are HIV positive or not, there are many causes of neuropathy (peripheral or otherwise). People frequently ask why they've contracted neuropathy and it's such a complex subject that the answer can't usually be compressed enough to fit in a blog post. This article from the National Institute of Neurological Disorders and Stroke (see link below)gives a general idea of the main causes of the disease. It doesn't really explain why an HIV-positive person may have neuropathy but then again, your neuropathy may not necessarily stem from your HIV status.

What causes peripheral neuropathy?
Last updated August 10, 2011

Peripheral neuropathy may be either inherited or acquired. Causes of acquired peripheral neuropathy include physical injury (trauma) to a nerve, tumors, toxins, autoimmune responses, nutritional deficiencies, alcoholism, and vascular and metabolic disorders. Acquired peripheral neuropathies are grouped into three broad categories: those caused by systemic disease, those caused by trauma from external agents, and those caused by infections or autoimmune disorders affecting nerve tissue. One example of an acquired peripheral neuropathy is trigeminal neuralgia (also known as tic douloureux), in which damage to the trigeminal nerve (the large nerve of the head and face) causes episodic attacks of excruciating, lightning-like pain on one side of the face. In some cases, the cause is an earlier viral infection, pressure on the nerve from a tumor or swollen blood vessel, or, infrequently, multiple sclerosis. In many cases, however, a specific cause cannot be identified. Doctors usually refer to neuropathies with no known cause as idiopathic neuropathies.

Physical injury (trauma) is the most common cause of injury to a nerve. Injury or sudden trauma, such as from automobile accidents, falls, and sports-related activities, can cause nerves to be partially or completely severed, crushed, compressed, or stretched, sometimes so forcefully that they are partially or completely detached from the spinal cord. Less dramatic traumas also can cause serious nerve damage. Broken or dislocated bones can exert damaging pressure on neighboring nerves, and slipped disks between vertebrae can compress nerve fibers where they emerge from the spinal cord.

Systemic diseases — disorders that affect the entire body —often cause peripheral neuropathy. These disorders may include: Metabolic and endocrine disorders. Nerve tissues are highly vulnerable to damage from diseases that impair the body's ability to transform nutrients into energy, process waste products, or manufacture the substances that make up living tissue. Diabetes mellitus, characterized by chronically high blood glucose levels, is a leading cause of peripheral neuropathy in the United States. About 60 percent to 70 percent of people with diabetes have mild to severe forms of nervous system damage.

Kidney disorders can lead to abnormally high amounts of toxic substances in the blood that can severely damage nerve tissue. A majority of patients who require dialysis because of kidney failure develop polyneuropathy. Some liver diseases also lead to neuropathies as a result of chemical imbalances.

Hormonal imbalances can disturb normal metabolic processes and cause neuropathies. For example, an underproduction of thyroid hormones slows metabolism, leading to fluid retention and swollen tissues that can exert pressure on peripheral nerves. Overproduction of growth hormone can lead to acromegaly, a condition characterized by the abnormal enlargement of many parts of the skeleton, including the joints. Nerves running through these affected joints often become entrapped.

Vitamin deficiencies and alcoholism can cause widespread damage to nerve tissue. Vitamins E, B1, B6, B12, and niacin are essential to healthy nerve function. Thiamine deficiency, in particular, is common among people with alcoholism because they often also have poor dietary habits. Thiamine deficiency can cause a painful neuropathy of the extremities. Some researchers believe that excessive alcohol consumption may, in itself, contribute directly to nerve damage, a condition referred to as alcoholic neuropathy.

Vascular damage and blood diseases can decrease oxygen supply to the peripheral nerves and quickly lead to serious damage to or death of nerve tissues, much as a sudden lack of oxygen to the brain can cause a stroke. Diabetes frequently leads to blood vessel constriction. Various forms of vasculitis (blood vessel inflammation) frequently cause vessel walls to harden, thicken, and develop scar tissue, decreasing their diameter and impeding blood flow. This category of nerve damage, in which isolated nerves in different areas are damaged, is called mononeuropathy multiplex or multifocal mononeuropathy.

Connective tissue disorders and chronic inflammation can cause direct and indirect nerve damage. When the multiple layers of protective tissue surrounding nerves become inflamed, the inflammation can spread directly into nerve fibers. Chronic inflammation also leads to the progressive destruction of connective tissue, making nerve fibers more vulnerable to compression injuries and infections. Joints can become inflamed and swollen and entrap nerves, causing pain.

Cancers and benign tumors can infiltrate or exert damaging pressure on nerve fibers. Tumors also can arise directly from nerve tissue cells. Widespread polyneuropathy is often associated with the neurofibromatoses, genetic diseases in which multiple benign tumors grow on nerve tissue. Neuromas, benign masses of overgrown nerve tissue that can develop after any penetrating injury that severs nerve fibers, generate very intense pain signals and sometimes engulf neighboring nerves, leading to further damage and even greater pain. Neuroma formation can be one element of a more widespread neuropathic pain condition called complex regional pain syndrome or reflex sympathetic dystrophy syndrome, which can be caused by traumatic injuries or surgical trauma. Paraneoplastic syndromes, a group of rare degenerative disorders that are triggered by a person's immune system response to a cancerous tumor, also can indirectly cause widespread nerve damage.

Repetitive stress frequently leads to entrapment neuropathies, a special category of compression injury. Cumulative damage can result from repetitive, forceful, awkward activities that require flexing of any group of joints for prolonged periods. The resulting irritation may cause ligaments, tendons, and muscles to become inflamed and swollen, constricting the narrow passageways through which some nerves pass. These injuries become more frequent during pregnancy, probably because weight gain and fluid retention also constrict nerve passageways.

Toxins can also cause peripheral nerve damage. People who are exposed to heavy metals (arsenic, lead, mercury, thallium), industrial drugs, or environmental toxins frequently develop neuropathy. Certain anticancer drugs, anticonvulsants, antiviral agents, and antibiotics have side effects that can include peripheral nerve damage, thus limiting their long-term use.

Infections and autoimmune disorders can cause peripheral neuropathy. Viruses and bacteria that can attack nerve tissues include herpes varicella-zoster (shingles), Epstein-Barr virus, cytomegalovirus, and herpes simplex-members of the large family of human herpes viruses. These viruses severely damage sensory nerves, causing attacks of sharp, lightning-like pain. Postherpetic neuralgia often occurs after an attack of shingles and can be particularly painful.

The human immunodeficiency virus (HIV), which causes AIDS, also causes extensive damage to the central and peripheral nervous systems. The virus can cause several different forms of neuropathy, each strongly associated with a specific stage of active immunodeficiency disease. A rapidly progressive, painful polyneuropathy affecting the feet and hands is often the first clinically apparent sign of HIV infection.

Lyme disease, diphtheria, and leprosy are bacterial diseases characterized by extensive peripheral nerve damage. Diphtheria and leprosy are now rare in the United States, but Lyme disease is on the rise. It can cause a wide range of neuropathic disorders, including a rapidly developing, painful polyneuropathy, often within a few weeks after initial infection by a tick bite.

Viral and bacterial infections can also cause indirect nerve damage by provoking conditions referred to as autoimmune disorders, in which specialized cells and antibodies of the immune system attack the body's own tissues. These attacks typically cause destruction of the nerve's myelin sheath or axon (the long fiber that extends out from the main nerve cell body).

Some neuropathies are caused by inflammation resulting from immune system activities rather than from direct damage by infectious organisms. Inflammatory neuropathies can develop quickly or slowly, and chronic forms can exhibit a pattern of alternating remission and relapse. Acute inflammatory demyelinating neuropathy, better known as Guillain-Barré syndrome, can damage motor, sensory, and autonomic nerve fibers. Most people recover from this syndrome although severe cases can be life threatening. Chronic inflammatory demyelinating polyneuropathy (CIDP), generally less dangerous, usually damages sensory and motor nerves, leaving autonomic nerves intact. Multifocal motor neuropathy is a form of inflammatory neuropathy that affects motor nerves exclusively; it may be chronic or acute.

Inherited forms of peripheral neuropathy are caused by inborn mistakes in the genetic code or by new genetic mutations. Some genetic errors lead to mild neuropathies with symptoms that begin in early adulthood and result in little, if any, significant impairment. More severe hereditary neuropathies often appear in infancy or childhood.

The most common inherited neuropathies are a group of disorders collectively referred to as Charcot-Marie-Tooth disease. These neuropathies result from flaws in genes responsible for manufacturing neurons or the myelin sheath. Hallmarks of typical Charcot-Marie-Tooth disease include extreme weakening and wasting of muscles in the lower legs and feet, gait abnormalities, loss of tendon reflexes, and numbness in the lower limbs.

http://www.ninds.nih.gov/disorders/peripheralneuropathy/detail_peripheralneuropathy.htm#183593208

Thursday, June 22, 2017

Are High Dose Vitamins Actually Harmful For HIV Patients


Today's post from i-base.info (see link below) looks at something which will directly affect many people living with HIV and other complications such as neuropathy and that is vitamin intake. Many people supplement their diets with vitamins: some will take too little to have any noticeable effect and others will take too many, resulting in possible toxicity and liver and kidney problems. You will find articles all over the Net advising this that or the other for your immune system and also a great deal of supplement advice for your neuropathy problems. The studies mentioned here suggest that high-dosage vitamin supplementation may not be a good idea at all but as the author says, the jury is still out in most cases. Part of the problem for HIV-patients is that they may be reluctant to stop one supplement because they're not sure if it's doing them any good or not but are reluctant to stop and in the meantime, they take on further supplements possibly building up a dangerous and unnecessary amount of vitamins in the system. Apart from the potential medical problems, many people don't realize that they may just be wasting their money because most of the supplements will be passed out of the body during urination, thanks to the amounts being just too high and absorption problems. It's always best to get trustworthy advice from more than one source in these matters as well as doing your own research. Your HIV specialist may well have quite a bit of experience in this field.

High dose multivitamin use in advanced HIV has no benefit to CD4 and viral load and may cause liver toxicity
Nathan Geffen, CSSR, University of Cape Town HIV TREATMENT BULLETIN 1 December 2012.

Whether daily micronutrient supplements improve health has for decades been a hotly debated question. In recent years several large studies have been published and received wide publicity. Results, whether in trials for HIV positive or HIV negative participants, have been inconsistent.

In the 17 October 2012 edition of JAMA, (The Journal Of the American Medical Association ed:) Fawzi and colleagues report results from a randomised double-blind trial that examined high dose vitamin supplements versus standard dose supplements in people with HIV on antiretroviral treatment. This is the first major study published considering high-dose micronutrient supplementation for people on antiretroviral treatment. [1]

The primary outcome measure was disease progression or death. Over 3,400 patients were randomised, just over 1,700 to each arm, to receive daily oral supplements of vitamin B complex, vitamin C, and vitamin E at either high or standard levels. The standard dose was based on recommended daily allowance (RDA) with high-dose supplements providing 2 to 21 times the RDA for the B vitamins, 2 times the RDA for vitamin E, and 6 times the RDA for vitamin C, see Table 1. Both supplements were matched in appearance and taste.

Over 65% of participants were women. Approximate mean (SD) baseline demographics included age 38 (+ 8.6) years, CD4 count 130 (+ 100) cells/mm3 and BMI 21 (+ 4.1), with no significant differences found between the arms at baseline. Only 20% of patients had a CD4 count > 200 cells/mm3 and 40% had a count less than 100 cells/mm3 and viral load was 5.2 log (+ 0.7) log copies/mL. All patients were initiated on 3TC plus either nevirapine or efavirenz, with 70% patients using d4T (stavudine) and 30% using AZT.

Recruitment began in November 2006 and was planned to run for two years. An interim analysis in 2007 showed an increase in deaths in the high-dose arm, so the DSMB recommended all patients receive standard-dose supplements between November 2007 and March 2008. However, a further analysis showed that increased risk from high dose supplementation was restricted to patients affected were severely malnourished. This allowed the study to continue, but excluded patients with BMI less than 16 from enrollment.

The study was halted a second time by the DSMB early in March 2009, this time permanently, due to increased levels of alanine transaminase (ALT) in the high-dose arm. Median follow-up at this time was 15 months (IQR 6-19 months).

The absolute risk of HIV progression or death was 72% in the high-dose group vs 72% in the standard-dose group (risk ratio [RR], 1.00; 95% CI, 0.96-1.04). Approximately 1,230 patients experienced HIV progression in each arm with about 450 deaths divided almost evenly between the arms.

High-dose supplementation had no effect on CD4 count, plasma viral load, body mass index, or hemoglobin level concentration, but increased the risk of ALT elevations (1239 events per 1215 person-years vs 879 events per 1236 person-years; RR, 1.44; 95% CI, 1.11-1.87, p = 0.006) vs standard-dose supplementation. However, this was for increases above the upper limit of normal (ULN >40 IU/L). For the more rigorous and clinically relevant cut-off of 5xULN (>200 IU/L) was reported in only 2% of participants with a non significant RR 1.12 (0.50 to 2.50), p = 0.79, NS.

However, the high-dose arm reported a significantly reduced risk of peripheral neuropathy which was extensively reported and still very common in the high dose arm (1213 events per 1503 person years vs 1365 events per 1450 person years). Nevertheless, this difference was significant (RR 0.81 (0.70 to 0.94), p=0.004).

Table 1: Supplement content for standard and high doseVitaminStandard DoseHigh Dose
Thiamin 1.2 mg 20 mg
Riboflavin 1.2 mg 20 mg
Vitamin B6 1.3 mg 25 mg
Niacin 15 mg 100 mg
Vitamin B12 2.4 μg 50 μg
Folic acid 0.4 mg 0.8 mg
Vitamin C 80 mg 500 mg
Vitamin E 15 mg 30 mg

Comment

This trial is a setback for proponents of high-dose supplementation. At best there was no benefit (or perhaps a reduced rate of neuropathy, though the prevalence of neuropathy in both arms remained alarmingly high) and at worst a potentially negative impact on liver enzymes (though non-significant at a clinically relevant level).

A more compelling study for the benefits of micronutrient supplementation was published in 2004 in the New England Journal of Medicine by Wafaie Fawzi of Harvard Medical School and his colleagues. [2] In this randomised placebo-controlled trial, 67 of 271 pregnant women who received a supplement containing vitamins B, C and E progressed to WHO stage 4 or died compared to 83 of 267 women who received placebo (24.7% vs. 31.1%; RR:0.71; 95%CI: 0.51-0.98; p=0.04).

The multivitamin arm participants also had significantly higher CD4 and CD8 cell counts and significantly lower viral loads. Interestingly, the study found that adding vitamin A to the regimen reduced its benefit. The quality of this study was high but the targeted population was very specific, i.e. pregnant women in a very poor country. Recommending micronutrient supplementation to people with HIV or even only pregnant women with HIV cannot be generalised on the basis of this study alone.

However, a Cochrane Review published in March 2012 considered 78 clinical trials of antioxidants that included nearly 300,000 patients. [3] The authors concluded that the “current evidence does not support the use of antioxidant supplements in the general population or in patients with various diseases.” They also wrote, “Beta-carotene and vitamin E seem to increase mortality, and so may higher doses of vitamin A. Antioxidant supplements need to be considered as medicinal products and should undergo sufficient evaluation before marketing.”

Four relevant Cochrane Reviews have been conducted on vitamins and HIV:
Sinclair and colleagues (November 2011) considered 23 trials with over 6,800 patients that examined nutritional supplements for people with TB. They concluded that there was not enough evidence to judge whether multivitamins reduced mortality in HIV negative people with TB, but found moderate quality evidence that they had little or no effect in people co-infected with HIV. [4]

Van den Broek and colleagues considered vitamin A supplementation during pregnancy and examined 31 trials, of which 14 were included in their analysis. They published in March 2011. Overall, vitamin A supplementation did not reduce maternal mortality, perinatal and newborn mortality, stillbirth, preterm birth, low birthweight or newborn anaemia. They did however find good evidence that vitamin A deficiency is common. The evidence also suggested a reduction in maternal infection, but the authors wrote that these data were not of a high quality. [5]

Siegfried and colleagues published a review earlier this year that considered four trials in pregnant women and their infants. They concluded that micronutrient supplements improved the health of pregnant women and their infants. They also wrote that no significant adverse effects were reported. However, zinc supplementation did not show any significant benefits. They found that selenium did not benefit mothers HIV progression or their pregnancy but may increase the likelihood of a child surviving and may reduce diarrhoea in mothers. They found insufficient evidence about the effects of supplements on pregnant women living with HIV who were on antiretroviral medicines. [6]

The same authors published another review in January 2012 that updated an earlier review they did in 2005 titled, “Micronutrient supplementation for children and adults with HIV infection”. Their findings are quite nuanced. They reviewed 30 trials involving over 22,000 participants. Of these, 20 trials examined single supplements (vitamin A, vitamin D, zinc, selenium) and 10 examined multiple micronutrients. Eight trials were in children. [7]

Vitamin A had no benefit in adults, but halved all-cause mortality in a meta-analysis of three trials in African children.

Zinc supplements reduced diarrhoea in one trial of South African children, but showed no benefits to adults in a trial of Tanzanian women or Peruvian adults with persistent diarrhoea.

The authors found that selenium reduced diarrhoea in pregnant women in Tanzania, and reduced viral load in two separate small trials in American adults.

Vitamin D showed no benefits when taken alone. They cited the Tanzanian trial described above as evidence for benefit to pregnant women and their children. They also found another Tanzanian trial in which supplements reduced the recurrence of pulmonary TB and increased weight gain in co-infected patients.

References:
Isanaka S et al. Effect of High-Dose vs Standard-Dose Multivitamin Supplementation at the Initiation of HAART on HIV Disease Progression and Mortality in Tanzania: A Randomized Controlled Trial. JAMA. 2012;308(15):1535-1544. doi:10.1001/jama.2012.13083.
http://jama.jamanetwork.com/article.aspx?articleid=1383231
Fawzi W et al. A Randomized Trial of Multivitamin Supplements and HIV Disease Progression and Mortality. N Engl J Med 2004; 351:23-32July 1, 2004. DOI: 10.1056/NEJMoa040541
http://www.nejm.org/doi/full/10.1056/NEJMoa040541
Bjelakovic G et al. Antioxidant supplements for prevention of mortality in healthy participants and patients with various diseases. Cochrane Review March 2012.
http://summaries.cochrane.org/CD007176/antioxidant-supplements-for-prevention-of-mortality-in-healthy-participants-and-patients-with-various-diseases
Sinclair D et al. Nutritional supplements for people being treated for active tuberculosis. Cochrane Review November 2011.
http://summaries.cochrane.org/CD006086/nutritional-supplements-for-people-being-treated-for-active-tuberculosis
Van den Broek N et al. Vitamin A supplementation during pregnancy for maternal and newborn health outcomes. Cochrane Review March 2011.
http://summaries.cochrane.org/CD008666/vitamin-a-supplementation-during-pregnancy-for-maternal-and-newborn-health-outcomes
Siegfried N et al. Micronutrient supplementation interventions to reduce harm in pregnant and lactating women living with HIV. Cochrane Review March 2012.
http://summaries.cochrane.org/CD009755/micronutrient-supplementation-interventions-to-reduce-harm-in-pregnant-and-lactating-women-living-with-hiv-_
Irlam JH et al. Micronutrient supplementation for children and adults with HIV infection. Cochrane Review January 2012.
http://summaries.cochrane.org/CD003650/micronutrient-supplementation-for-children-and-adults-with-hiv-infection

http://i-base.info/htb/20615

Thursday, June 8, 2017

Will Quell Be The Device That Actually Works For Neuropathy Patients


Today's post from healthline.com (see link below) looks like an advert for a new product, something which this blog tries to avoid but at the same time, if something comes on the market, it is our duty to inform people who may or may not benefit and ask for user reactions and experiences. After all, it's not as if neuropathy is overwhelmed with health devices that actually work is it? Take a read and make up your own minds, then do your own research and discuss it with your doctor or neurologist. One of these days, one of these products may well turn out to be a eureka moment but in the meantime, always maintain a healthy dose of scepticism!

Got Neuropathy? Quell Offers “World’s First Pain Relief Wearable”

Written by Amy Tenderich | Published on 01 July 2015



Amongst the current flurry of wearable sensors and mHealth apps that appear to be so many elaborate toys, a new system called Quell stands out. It seems to have real potential to change lives… for many people with diabetes and beyond.

Quell is a first-of-its-kind, drug-free option for reducing the pain of neuropathy, sciatica, and other chronic pain through neural pulses — delivered by a band wrapped just below the knee, with a companion app that allows users to change settings and track sessions via a smartphone or iPad.

Its makers boast that it is “clinically proven to start relieving chronic pain in as little as 15 minutes… (with) FDA cleared prescription-strength technology that works with your own body by stimulating your nerves and blocking pain signals in your body.”

Approved by FDA last summer, Quell is just being launched now, following a highly successful Spring Indiegogo crowdfunding campaign. It was debuted to the diabetes world in a decent-sized booth at the ADA Scientific Sessions in Boston a few weeks ago. The big expo signs touting “Wearable Pain Relief Technology” were hard to ignore. I spent about 40 minutes in the booth myself, talking with their experts and getting a demo of this insipid-looking Velcro band that’s creating such a stir.

Check out their marketing video here.



My first thought was that for many of our friends in the Diabetic Community who suffer from the pain of neuropathy, Quell could certainly be a boon!

From Calf to Brain

I learned that the device, made by a startup called NeuroMetrix in the Boston area, was developed in collaboration with the renowned design firm IDEO. Users simply wrap it around their upper calf, just below the knee, and turn it on for intermittent sessions of up to 60 minutes, followed by a rest period of another hour (more than 60 minutes at a time can cause overstimulation), we’re told.

The first time you use it, you calibrate the unit by testing different vibration intensity levels and pressing when you feel stimulation (user tip: the unit needs to be held upright while you do this). The companion app remembers your settings and tracks your sessions, for your own records and to share with a doctor, if desired.

Quell works by stimulating nerves in your upper calf with neural pulses, that trigger a pain relief response in your central nervous system that blocks pain signals in your body. So it helps treat pain in the back, legs, or feet –- the pain does not have to be located at or even near the spot on your leg where the unit is worn.

“A Huge Difference”

“There’s been a ton of excitement around this because there really are so few options for treating chronic pain. Some patients are on three to five different medications, which can be addictive or have other unwanted effects,” said Alyssa Fenoglio, NeuroMetrix Director of Marketing.

Indeed, the Quell Indiegogo campaign (“The World’s First Pain Relief Wearable!”) launched in March raised $100,000 in just 1.5 days, and over $387,000 in one month, Fenoglio says. As part of that, the company pre-sold nearly 2,000 units at an introductory discount of $199 per device.

The company’s been collecting user testimonials, with dozens of people saying things like “it makes a huge difference” and “I’m getting my life back” by being able to enjoy many activities again.

"It elevates your inherent pain-modulating chemicals — at a molecular level, it's what painkillers do synthetically. But you can essentially cause a similar effect without any of the downsides by electrically stimulating to induce your brain to produce these chemicals," CEO of NeuroMetrix Shai Gozani told Fast Company recently.

The use of electrical stimulation to fight pain has apparently been around since the 1970s. But NeuroMetrix has developed a novel, convenient way to deliver its benefits.

NeuroMetrix itself began as a spinoff of the Harvard-MIT Division of Health Sciences and Technology in 1996, and has “spent nearly two decades of designing, building and marketing medical devices that stimulate nerves and analyze nerve response for diagnostic and therapeutic purposes.” Its Board of Directors includes Nancy Katz, who some may recognize as a diabetes expert who serves as VP of Consumer Marketing and Market Development at Medtronic.

Supply and Demand

Quell likely will not be covered by insurance, but it can be purchased using FSA debit cards. You can obtain Quell through selected physician’s offices (they’re expanding that network) or by purchasing it directly from the company online. The price is $249 for the device, plus $30 for a package of two replacement electrode strips, which need to be changed out every two weeks because sweat and oil from the skin wear them out, Fenoglio says.

OK, so if used regularly, the cost adds up to a little over $600 for the first year, and then ca. $360 in following years, which is less than the annual cost of prescription pain relief meds like Lyrica and Cymbalta — but without the side effects of weight gain, foot swelling, drowsiness and more. Not to mention potential negative drug interactions and long-term effects.

The Quell companion app is free to download and lets users track the number of sessions per day (time and intensity), change settings, and get alerts, such as when they are nearing the point of overstimulation or when it’s time to change the electrode strip.



The app also includes an accelerometer that can track activity and sleep (Quell has FDA clearance for nighttime use), so users could track the correlation of decreased pain with better sleep and more exercise over time, for example. With users’ permission, the company also plans to use data from the app to study Quell’s performance.

Got Neuropathy?

Seriously, who wouldn’t be interested in a non-invasive, drug-free, relatively affordable and easy-to-use wearable to reduce chronic pain?

My hope is that NeuroMetrix gets connected with efforts like the Diabetes Hope Conference, where people with diabetes meet online to discuss living well with complications like painful neuropathy. Because this is one Internet of Things/Health Wearable Gadget that the Diabetes Community ought to take seriously, IMHO.

http://www.healthline.com/diabetesmine/quell-neuropathy-pain-relief-wearable#1