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Neuropathic pain: Advances and challenges

By Prof Dominic Hegarty - 20th Apr 2026

Neuropathic
iStock.com/Viorika

Neuropathic pain is one of the most incapacitating pains and represents a significant unmet medical need

2026 IASP Global Year of Neuropathic Pain

The International Association for the Study of Pain (IASP) is the leading global organisation supporting the study and practice of pain and pain relief. Each IASP Global Year focuses on a specific aspect of pain to increase awareness within the pain community and beyond. The 2026 IASP Global Year is exploring neuropathic pain and its impact on millions of people worldwide, including challenges and best practices in its diagnosis and treatment, and the significant disability and reduced quality-of-life it can cause. See www.iasp-pain.org for more information.

It is estimated that approximately 7 to 8 per cent of adults have pain with neuropathic characteristics, including a quarter of people with diabetes and 35 per cent of people with HIV.1

Neuropathic pain, defined by the International Association for the Study of Pain (IASP, 2015) as “pain caused by a lesion or disease of the somatosensory nervous system” is associated with an impaired quality-of-life, and with a significant socio-economic impact.2 Yet despite the ‘definition’ the management of neuropathic pain can be challenging and, as with all pain, it needs to be approached with a biopsychosocial framework. There are several options for drug and non-drug treatments as part of an overall approach to improve patients’ quality-of-life and function.

Mechanism of neuropathic pain

Pain is our natural warning system. When tissue is damaged, specific receptors are activated and an extensive nerve fibre system carry this information from the periphery to the pain centres in the brain. This is typically self-limiting, and once the tissue heals, the danger is averted. However, in some cases a ‘lesion’ in the normal pathways can occur, pain persists, and a condition termed ‘neuropathic pain’ evolves.

The concept that pain could be caused by a nerve lesion was first proposed by the medieval medical scholars Rhazes, Haly Abbas, Avicenna, and Jorjani in the 10th–11th Century.3 They named this type of pain vaja al asab (nerve-originated pain). Whilst Rhazes described the properties of nerve-originated pain, Haly Abbas described its quality (numbness, tingling, and needle-like). The first animal model of neuropathic pain was created in 1988 (Bennett and Xie) using a chronic constriction injury of the sciatic nerve in rats.4 This was followed by a dramatic increase in the development of animal models of neuropathies. A decade later, in 1998, the first two large-scale multicentre randomised controlled trials (RCTs) of drug therapy (gabapentin) in neuropathic pain (painful diabetic neuropathies and postherpetic neuralgia) were published in JAMA.5,6

This marked the beginning of the modern age for neuropathic pain research and it was followed by an exponential increase of preclinical and clinical research. For example, the citation rate for neuropathic pain rose from 529 per year in 1998 to more than 3,000 per year since 2019 and 3,256 in 2022.7

Initially, new discoveries in the mechanisms of persistent pain pathophysiology drove specific areas of research and developments including target-specific therapies. The intricate interplay of multiple cellular and subcellular components alongside the ubiquitous presence of these components on non-nociceptive structures has complicated progress due to the unwanted side-effects. For this reason, few new agents have become available for commercial use over the past decade.

FIGURE 1: Neuropathic Pain Pathway15

Areas of potential new treatments

Four novel areas of pain research show promise in developing both a better understanding of pain responses, and new target-specific analgesics for persistent pain. Targeting of persistent pain mechanisms is focused on preventing or altering neural plasticity. Specific receptor or transmitter agents are acting on key steps in the pain cascade.

1) Anti-nerve growth factor antibodies

Nerve growth factor (NGF) is a neurotrophin implicated in inflammation and sensitisation phenomenon. Increased concentrations have been found in tissues undergoing an inflammatory response. Biochemically, it is a polypeptide that binds to tropomyosin receptor kinase A (TrkA) and p75 receptors. TrkA receptors on mast cells trigger histamine release, potentiating the inflammatory pathway, and eventual pain hypersensitivity.

Anti-NGF monoclonal antibodies may enable early intervention in histamine activation and modulate pain at the transcriptional level by reducing production of key cellular and subcellular elements in this pathway. Three anti-NGF antibody agents have been studied for osteoarthritis (tanezumab, fasinumab, and fulranumab), but are no longer undergoing clinical investigation.8,9,10,11

While there was promising initial data to support NGF antagonists as an analgesic modality, the aforementioned studied agents generally had negative side-effects that outweighed the benefits, particularly at higher doses. It is hoped that further innovation and future trials will elucidate a more favourable profile.

2) Microglia cells

Microglia are cells of the reticuloendothelial system of the CNS. They are responsible for shaping and reshaping neuronal circuits continuously throughout an entire life span. They comprise 10 to 20 per cent of all CNS cells, with the highest densities in the hippocampus, basal ganglia, substantia gelatinosa, and spinal cord. They are responsible for a significant portion of what is termed ‘neuroplasticity’, and microglia cells are involved in the cellular processes that take place during and after nerve injury, one of the pathognomonic features of neuropathic pain.

Microglial activation occurs through several pathways. Perhaps the most important is the mitogen-activated protein kinase (MAPK) pathways. These systems affect intracellular transcription and play a critical role in inflammation. Microglial p38 MAPK pathways are activated via phosphorylation by many proinflammatory cytokines and mediators, including tumour necrosis factor-a (TNF-a), interleukins (such as IL-1b), and adenosine triphosphate (ATP).

It is now possible to influence microglia cells using electrical currents. This is the basis of differential target multiplexed spinal cord stimulation (DTM-SCS). It has been studied in the setting of targeting spinal anatomy known to be richer in glial cells, particularly the T8–T11 region. Ongoing human studies targeting these regions with DTM-SCS have produced results showing improved analgesic outcomes over conventional SCS for back and leg pain.12

The impact of microglia on neuronal plasticity, and the ability to modulate this response, may have large implications in the treatment, prevention, and management of chronic pain syndromes. A better understanding and development of pharmaceutical and neuromodulator interventions for these pathways could open a window of opportunity. It may allow physicians to reduce the burden of chronic pain after nerve injury, including postoperative pain syndromes.

3) AMPK activators

AMPK is an enzyme involved in cellular homeostasis that maintains cellular energy levels by regulating ATP production and consumption. When a cellular stressor such as hypoxia, hypoglycaemia, or chemical insult affects a cell, ATP levels decrease, which activates AMPK to restore the balance. AMPK also acts as an inhibitory regulator of several enzymatic pathways linked to chronic pain, including MAPK and mammalian target of rapamycin complex.1

Mouse model studies have demonstrated that AMPK activation can reduce peripheral nerve injury and allodynia within seven days of injury.8 AMPK activators have also demonstrated complete resolution of long-standing nerve injury within 60 days of the event.8 There are rich opportunities for further study and expansion within this field.

4) Genetic studies

Knowledge in this area is still expanding. Genetic studies have revealed that nociception, chronic pain syndromes, and analgesic management all have links to heritable traits. For example, some patients may suffer from painful conditions entirely caused by a genetic mutation resulting in a defective channel protein. Is there a specific mutation that increases the risk of neuropathic pain? Can we genotype families at risk? There is little use of genetic testing in practice today. Looking to the future, genetic mapping and screening may help provide direction for pharmaceutical management and abuse risk. Gene therapies may represent a means to affect and interact with these complex systems to prevent or treat acute and chronic pain.

Gene therapies may represent a means to affect and interact with these complex systems to prevent or treat acute and chronic pain

TABLE 1: Overview of common neuropathic agents, mechanism of action, typical dose range, NNT and number needed to harm. Modified from several sources13

Evidence-based treatment

Due to the uncertainty of the pathophysiology, treating neuropathic pain is difficult. New treatments require clinical trials and standards of quality to provide evidence-based recommendations for its pharmacological treatment.

Monotherapy recommendations

The Neuropathic Pain Special Interest Group (NeuPSIG) of the IASP conducted a systematic review of randomised double-blind studies of oral and topical pharmacotherapy for neuropathic pain, including unpublished trials (retrieved from clinicaltrials.gov and pharmaceutical websites). Meta-analysis used numbers needed to treat (NNT) for 50 per cent pain relief as the primary measure and assessed publication bias.13  Table 1 highlights the key aspects.

In 229 studies reviewed, the trial outcomes were generally modest even for effective drugs: In particular, NNTs were 3.6 (95% CI 3·0–4·4) for tricyclic antidepressants (TCAs), 6.4 (95% CI 5.2–8.4) for serotonin-noradrenaline reuptake inhibitor (SNRI) antidepressants duloxetine and venlafaxine, 7.7 (95% CI 6.5–9.4) for pregabalin and 6.3 (95% CI 5.0–8.3) for gabapentin. NNTs were higher for gabapentin ER and capsaicin high concentration patches, lower for opioids and botulinum toxin A (BTX-A), and undetermined for lidocaine patches. Final quality of evidence was lower for lidocaine patches and BTX-A.13

Limited efficacy, large placebo responses, inadequate diagnostic criteria and poor phenotypic profiling probably account for modest trial outcomes and should be taken into account in future studies. A number of overarching themes were identified in the research:

▶ Most studies were conducted in diabetic neuropathy or postherpetic neuralgia;

▶ Publication bias accounted for approximately 10 per cent of the treatment effect;

▶ Placebo effect was large;

▶ Drug effects were modest;

▶ Data did not identify that one particular drug or drug class was superior in any particular neuropathic pain syndrome;

▶ The majority of studies were for 12 weeks or less;

▶ Data were limited to non-cancer pain in adults.

Neuropathic agents head-to-head

To help understand how agents performed within and across different products, Sadegh et al (2024) conducted a systematic review and meta-analysis of direct-comparison double-blind randomised trials comparing neuropathic agents.14

Primary outcomes included mean change in pain intensity and the number of responders with a 50 per cent reduction in pain intensity. Secondary outcomes encompassed quality-of-life, sleep, emotional functioning, and number of dropouts because of adverse events. They included 30 trials (4,087 patients), comprising 16 crossover and 14 parallel groups design studies. All studies were conducted in adults, and the majority were investigator-initiated trials.

▶ They found moderate quality evidence for equivalence (no clinically relevant difference) between TCA and gabapentin/pregabalin, with a combined mean difference in pain score of 0.10 (95% CI 20.13-0.32).

▶ There was no documented differences between TCA and SNRI, between SNRI and gabapentin/pregabalin, or between opioids and TCA (low quality of evidence).

▶ The dropout rate in studies was because of adverse events with SNRI and opioids compared with TCA (low quality of evidence).

▶ They did not identify any studies that included topical treatments. This systematic review of direct comparison studies found evidence for equivalence between TCA and gabapentin/pregabalin and fewer dropouts with TCA than SNRI and opioids.

Pragmatic management

Clearly neuropathic pain is a challenging chronic pain condition. Due to limited evidence-based knowledge, the relative effectiveness of pharmacological treatments, and differences in trial design and impact of the placebo response, preclude indirect comparisons of efficacy between drug classes. Prescribers need to consider a number of factors when they consider starting on medication.

▶ Use a recognised screening tool to establish the true existence of  neuropathic pain. For example, the Douleur Neuropathique 4 questionnaire (DN4) or PainDetect scores are easy bedside options. Monitoring for efficacy (using multidimensional tools for pain intensity, quality-of-life and patient function), and safety can provide valuable insight.

▶ Consider Quantitative Sensory Testing (QST) to assist in making this diagnosis and potentially guide treatments.

▶ Use the IASP guidelines to choose the agents.2

Start with a TCA or SNRI with consideration of the patient’s comorbidities, potential drug interactions and adverse effects, and consider pregabalin or gabapentin next before tramadol. The  gabapentinoids have neurocognitive adverse effects, can cause weight gain, and are associated with an increased risk of falls. They are anxiolytic, and there is emerging evidence of significant pregabalin abuse.

d) Set the duration of the treatment and identify outcomes you see as valuable to the patient. A pragmatic approach may be to try a therapy for 12 weeks as this is the maximum duration of most of the trials. Continue to monitor for efficacy (using multidimensional tools for pain intensity, quality-of-life and patient function) and safety.

▶ Finally, consider the dose regime – stop if the treatment is not working and agree the plan with the patient from the beginning.

In summary, neuropathic pain is one of the most incapacitating pains and represents a significant unmet medical need. It is estimated that approximately 7–8 per cent of adults have pain with neuropathic characteristics. We need to use the pharmacological options wisely to ensure the best and safest treatment can be provided to patients.

References

Colloca L, Ludman T, Bouhassira D, et al. Neuropathic pain. Nat Rev Dis Primers. 2017;3:17002

Finnerup NB, Attal N, Haroutounian S, et al. Pharmacotherapy for neuropathic pain in adults: A systematic review and meta-analysis. Lancet Neurol. 2015;14(2):162-173

Heydari M, Shams M, Hashempur MH, et al. The origin of the concept of neuropathic pain in early medieval Persia (9th–12th Century CE). Acta Med Hist Adriat. 2015;13 Suppl 2:9-22

Bennett GJ, Xie YK. A peripheral mononeuropathy in rat that produces disorders of pain sensation like those seen in man. Pain. 1988 Apr;33(1):87-107

Rowbotham M, Harden N, Stacey B, et al. Gabapentin for the treatment of postherpetic neuralgia: A randomised controlled trial. JAMA. 1998 Dec 2;280(21):1837-42

Backonja M, Beydoun A, Edwards KR, et al. Gabapentin for the symptomatic treatment of painful diabetic neuropathy: A randomised controlled trial. JAMA. 1998 Dec 2;280(21):1831-6

Finnerup NB, Kuner R, Jensen TS. Advances and challenges in neuropathic pain: A narrative review and future directions. Br J Anaesth. 2023 Sep;131(3):505–524

Cohen I, Lema MJ. What’s new in chronic pain pathophysiology. Can J Pain. 2020 Dec 30;4(4):13–18

Ramos AMT, Atkinson TJ. Analgesics of the future: Inside the potential of nerve growth factor antagonists. Pract Pain Manag. 2019;19:55–59

Schnitzer TJ, Marks JA. A systematic review of the efficacy and general safety of antibodies to NGF in the treatment of OA of the hip or knee. Osteoarthr Cartil. 2015;23:S8–S17

Miller RE, Block JA, Malfait AM. Nerve growth factor blockade for the management of osteoarthritis pain: What can we learn from clinical trials and preclinical models? Curr Opin Rheumatol. 2017 Jan;29(1):110–118

Fishman M, Cordner H, Justiz R, et al. Twelve-month results from a multicenter, randomised, controlled clinical trial comparing differential target multiplexed spinal cord stimulation with traditional spinal cord stimulation in subjects with chronic intractable back and leg pain. Neuromodulation. 2021 Dec;24(8):1374–83

Colloca L, Ludman T, Bouhassira D, et al. Neuropathic pain. Nat Rev Dis Primers. 2017 Feb 16;3:17002

Sadegh AA, Gehr NL, Finnerup NB. A systematic review and meta-analysis of randomised controlled head-to-head trials of recommended drugs for neuropathic pain. Pain Rep. 2024 Feb 21;9(2):e1138

Finnerup NB, Kuner R, Jensen TS. Neuropathic pain: From mechanisms to treatment. Physiol Rev. 2021 Jan 1;101(1):259-301

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