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Review | Open Access

Spooky action at a distance: neuromodulation, physiologic distress signals, and limb preservation

Ahmed Sami Raihane1 ( ), Gabriela Morales Deusch2, Charles Liu3,4, Bijan Najafi5, Wuquan Deng6 , Natasha G. Dark1, David G. Armstrong7
Division of Plastic & Reconstructive Surgery, Department of Surgery, University of New Mexico School of Medicine, 1 University of New Mexico, MSC10 5550, Albuquerque, NM 87131, United States
Pasadena City College, 1570 E Colorado Blvd, Pasadena, CA 91106, United States
University of Southern California Neurorestoration Center and Department of Neurological Surgery, Keck School of Medicine of the University of Southern California, 1200 N State St, Los Angeles, CA 90033, United States
Rancho Los Amigos National Rehabilitation Center, 7601 Imperial Hwy, Downey, CA 90242, United States
Department of Surgery, David Geffen School of Medicine at the University of California, Los Angeles, 10833 Le Conte Ave, Los Angeles, CA 90095, United States
Department of Endocrinology, School of Medicine, Chongqing Emergency Medical Center, Chongqing University Central Hospital, Chongqing University, No. 1 Jiankang Rd, Yuzhong District, Chongqing 400014, China
Department of Surgery, Keck School of Medicine of the University of Southern California, 1520 San Pablo St, Los Angeles, CA 90033, United States
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Highlights

• Diabetic foot disease is fundamentally a systemic neurovascular and inflammatory disorder, not a purely local wound, explaining the high failure and recurrence rates of conventional limb-salvage strategies.

• Neuromodulatory and mechanotransductive interventions, including spinal cord stimulation, focused ultrasound, ischemic conditioning, and periosteal-based surgery, converge on a shared principle: inducing regenerative physiologic effects at sites remote from the point of intervention.

• Remote activation of neural, endothelial, and immune signaling pathways can enhance microcirculation, angiogenesis, and tissue resilience in ischemic limbs, reframing limb preservation as a biologically restorative rather than palliative goal.

• Early clinical signals across multiple modalities suggest improvements in pain, perfusion, wound healing, and limb salvage, but current evidence is limited by small cohorts, heterogeneous protocols, and incomplete long-term follow-up.

• Translation into routine practice will require rigorously designed multicenter trials with amputation-free survival, recurrence, and quality-of-life endpoints, alongside careful attention to cost, access, and procedural morbidity.

Abstract

The rising global prevalence of chronic conditions, notably obesity and type 2 diabetes, demands innovative approaches to mitigate their health and economic impacts. Complications, including neuropathy and chronic limb-threatening ischemia (CLTI), dramatically increase the risk of lower limb amputation, cardiovascular events, and cerebrovascular events, underscoring the urgent need for effective interventions. Emerging neuromodulation and regenerative strategies provide novel approaches to addressing diabetes-related complications. High-frequency (10-kHz) spinal cord stimulation demonstrates marked pain relief and sensory improvement in patients with refractory painful diabetic neuropathy. Peripheral focused ultrasound, including splenic-targeted stimulation, shows promise in reducing systemic inflammation, accelerating wound repair, and enhancing vascular function. Remote ischemic conditioning leverages brief controlled ischemic reperfusion cycles to enhance microcirculation and promote diabetic foot ulcer (DFU) healing. In severe cases, surgical techniques such as tibial transverse transport and lateral tibial periosteum distraction stimulate angiogenesis and enhance distal limb perfusion. Integrated wound care protocols, incorporating these procedures alongside debridement, negative pressure wound therapy, and skin grafting, may further optimize outcomes. Collectively, these therapies address both local and systemic pathophysiology, frequently producing physiologic effects at sites distant from the primary intervention. These seemingly disparate therapies represent a single unifying concept: generating a physiologic effect at locations remote from the primary target. This systematic approach, engaging neural, vascular, and immune pathways, may be key to improving outcomes in DFUs and CLTI. Early clinical data appears promising; however, larger randomized trials are required to validate efficacy, refine patient selection, and determine optimal integration with standard care. If confirmed, these strategies may shift management toward patient-centered, regenerative interventions that preserve limbs, reduce recurrence, and enhance quality of life for the expanding global patient population. Further research is warranted to confirm or refute these early promising physiologic effects.

References

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Burns & Trauma
Article number: tkag017

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Cite this article:
Raihane AS, Deusch GM, Liu C, et al. Spooky action at a distance: neuromodulation, physiologic distress signals, and limb preservation. Burns & Trauma, 2026, 14(3): tkag017. https://doi.org/10.1093/burnst/tkag017

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Received: 13 August 2025
Revised: 15 February 2026
Accepted: 25 February 2026
Published: 08 April 2026
© The Author(s) 2026. Published by Oxford University Press.

This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.