An emerging approach in regenerative medicine exploring new possibilities for supporting neurological function, reducing inflammation, and improving quality of life.
Neurological disorders can affect movement, memory, coordination, sensation, speech, and many other essential functions. Conditions involving the brain, spinal cord, and nervous system can significantly impact independence and quality of life.
Conventional neurological care may include medications, rehabilitation, physical therapy, occupational therapy, and other supportive treatments. Depending on the condition, these approaches can help manage symptoms and maintain function, but some neurological conditions currently have limited treatment options.
How Stem Cell Therapy for Neurological Disorders Works
Medical Evaluation
Every treatment journey begins with a comprehensive evaluation of the patient's medical history, diagnosis, current symptoms, and treatment goals.
Cell Selection & Preparation
Depending on the treatment approach and individual treatment plan, regenerative cells are selected and prepared under controlled laboratory conditions.
Targeted Administration
The prepared cells are administered according to the patient's condition and treatment protocol under appropriate medical supervision.
Biological Response
Stem cells are being studied for their ability to communicate with surrounding tissues, influence inflammatory and immune responses, and potentially support the body's natural repair mechanisms.
Potential Benefits
Exploring the Potential of Stem Cell Therapy
Stem cell therapy for neurological disorders remains an evolving area of medical research. Depending on the specific condition and individual circumstances, researchers are studying its potential role in:
Supporting Neurological Function
Stem cells are being researched for their potential to support damaged or stressed tissues within the nervous system and promote a healthier cellular environment.
Modulating Inflammation
Certain stem cells, including mesenchymal stem cells, are being studied for their immunomodulatory properties and their potential ability to influence inflammatory processes.
Supporting Tissue Repair
Researchers are investigating whether stem cell-based therapies may contribute to repair processes involving neurological tissues.
Improving Mobility and Function
For certain neurological conditions, regenerative approaches are being studied for their potential to support movement, coordination, and other aspects of physical function.
A Minimally Invasive Approach
Depending on the treatment protocol, stem cell-based procedures may offer a less invasive alternative to some surgical interventions.
Personalized Treatment Planning
Neurological disorders can vary significantly from one patient to another. A personalized evaluation helps determine whether regenerative medicine options may be appropriate based on the individual's condition and medical history.
Patient Selection
Who Is a Good Candidate?
You have been diagnosed with a neurological condition and are exploring additional treatment options.
Your symptoms continue to affect mobility, coordination, independence, or quality of life.
Conventional treatment approaches have not provided sufficient improvement or you are seeking to learn about emerging regenerative medicine options.
You are medically stable and able to undergo a comprehensive evaluation.
Stem cell therapy for neurological disorders is an emerging area of regenerative medicine that is being researched for a range of conditions affecting the brain, spinal cord, and nervous system.
Researchers are studying different types of stem cells for their potential ability to influence inflammation, support immune regulation, protect existing cells, and contribute to the body’s natural repair processes. Mesenchymal stem cells, in particular, have been investigated for their immunomodulatory and signaling properties.
Stem cell therapy for neurological disorders is an emerging regenerative medicine approach being researched for its potential to support nervous system health, influence inflammatory responses, and contribute to tissue repair processes. The potential application depends on the specific neurological condition.
Stem cells are being studied for their ability to communicate with surrounding cells through biological signaling. Researchers are investigating whether these processes may help regulate inflammation, influence immune activity, support existing cells, and contribute to the body's natural repair mechanisms.
Stem cell therapy should not be considered a guaranteed cure. While research in regenerative medicine continues to advance, many stem cell applications for neurological disorders remain investigational, and results can vary depending on the specific condition and individual patient factors.
The Future of Neurological Care
Exploring New Possibilities in Regenerative Medicine
Advances in regenerative medicine continue to expand scientific understanding of how cellular therapies may interact with the nervous system.
Stem cell therapy for neurological disorders represents an important area of ongoing research, offering new possibilities for studying how regenerative approaches may support neurological health, function, and quality of life.
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Autismo
Referencias
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Artritis reumatoide
Referencias
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Lupus eritematoso sistémico
Referencias
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Esclerosis múltiple
Referencias
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EII Enfermedad inflamatoria intestinal
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vasculitis sistémica
References
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Angina/Coronary Heart Disease
References
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Mejora de la funcionalidad y la eficacia terapéutica de la terapia celular con células madre mesenquimales para enfermedades cardiovasculares Yun & Lee
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Ulcerative Colitis
References
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Hosseini-Asl, S.-K., Mehrabani, D. y Karimi-Busheri, F. (2020). Efecto terapéutico de las células madre mesenquimales en la colitis ulcerosa: una revisión de logros y desafíos. Revista de Medicina Clínica, 9(12), 3922. https://doi.org/10.3390/jcm9123922
Afecciones neurológicas
References
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Parkinson’s
References
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Multiple system atrophy (MSA)
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Traumatic brain injury
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Chronic traumatic encephalopathy
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Spinal cord injury
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Arthritis & Osteoarthritis
References
Jang, S., Lee, K., & Ju, J. H. (2021). Recent updates of diagnosis, pathophysiology, and treatment on osteoarthritis of the knee. International Journal of Molecular Sciences, 22(5). https://doi.org/10.3390/ijms22052619
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References
Amyotrophic Lateral Sclerosis
References
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Rheumatoid arthritis
References
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Systemic Lupus Erythematosus
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Multiple Sclerosis
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IBD Inflammatory bowel disease
References
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Systemic vasculitis
References
Shen, Z., Huang, W., Liu, J., Tian, J., Wang, S., & Rui, K. (2021e). Effects of mesenchymal stem Cell-Derived exosomes on autoimmune diseases. Frontiers in Immunology, 12. https://doi.org/10.3389/fimmu.2021.749192
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Angina/Coronary Heart Disease
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Ulcerative Colitis
References
Gajendran, M., Loganathan, P., Jimenez, G., Catinella, A. P., Ng, N., Umapathy, C., Ziade, N., & Hashash, J. G. (2019). A comprehensive review and update on ulcerative colitis. Disease-a-Month: DM, 65(12), 100851. https://doi.org/10.1016/j.disamonth.2019.02.004
Hosseini-Asl, S.-K., Mehrabani, D., & Karimi-Busheri, F. (2020). Therapeutic effect of mesenchymal stem cells in ulcerative colitis: A review on achievements and challenges. Journal of Clinical Medicine, 9(12), 3922. https://doi.org/10.3390/jcm9123922
Neurological conditions
References
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Barthels, D., & Das, H. (2020). Current advances in ischemic stroke research and therapies. Biochimica et Biophysica Acta. Molecular Basis of Disease, 1866(4), 165260. https://doi.org/10.1016/j.bbadis.2018.09.012
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Kawabori, M., Shichinohe, H., Kuroda, S., & Houkin, K. (2020). Clinical trials of stem cell therapy for cerebral ischemic stroke. International Journal of Molecular Sciences, 21(19), 7380. https://doi.org/10.3390/ijms21197380
Parkinson’s
References
Pradhan, A. U., Uwishema, O., Onyeaka, H., Adanur, I., & Dost, B. (2022). A review of stem cell therapy: An emerging treatment for dementia in Alzheimer’s and Parkinson’s disease. Brain and Behavior, 12(9). https://doi.org/10.1002/brb3.2740
Multiple system atrophy (MSA)
References
Goh YY, Saunders E, Pavey S, Rushton E, Quinn N, Houlden H, Chelban V. Multiple system atrophy. Pract Neurol. 2023 Jun;23(3):208-221. doi: 10.1136/pn-2020-002797. Epub 2023 Mar 16. PMID: 36927875.
Khellaf A, Khan DZ, Helmy A. Recent advances in traumatic brain injury. J Neurol. 2019 Nov;266(11):2878-2889. doi: 10.1007/s00415-019-09541-4. Epub 2019 Sep 28. PMID: 31563989; PMCID: PMC6803592.
Chronic traumatic encephalopathy
References
Pierre K, Molina V, Shukla S, Avila A, Fong N, Nguyen J, Lucke-Wold B. Chronic traumatic encephalopathy: Diagnostic updates and advances. AIMS Neurosci. 2022 Dec 19;9(4):519-535. doi: 10.3934/Neuroscience.2022030. PMID: 36660076; PMCID: PMC9826753.
Spinal cord injury
References
Alizadeh, A., Dyck, S. M., & Karimi-Abdolrezaee, S. (2019). Traumatic spinal cord injury: An overview of pathophysiology, models and acute injury mechanisms. Frontiers in neurology, 10. https://doi.org/10.3389/fneur.2019.00282
Cofano, F., Boido, M., Monticelli, M., Zenga, F., Ducati, A., Vercelli, A., & Garbossa, D. (2019). Mesenchymal stem cells for spinal cord injury: Current options, limitations, and future of cell therapy. International Journal of Molecular Sciences, 20(11), 2698. https://doi.org/10.3390/ijms20112698
Looi, Q. H., Eng, S. P., Liau, L. L., Tor, Y. S., Bajuri, M. Y., Ng, M. H., & Law, J. X. (2020). Mesenchymal stem cell therapy for sports injuries – from research to clinical practice. Sains malaysiana, 49(4), 825-838. https://doi.org/10.17576/jsm-2020-4904-12
Arthritis & Osteoarthritis
References
Jang, S., Lee, K., & Ju, J. H. (2021). Recent updates of diagnosis, pathophysiology, and treatment on osteoarthritis of the knee. International Journal of Molecular Sciences, 22(5). https://doi.org/10.3390/ijms22052619