神经胶质疤痕:修复运动通路要不要穿透?

IF 3.2 4区 医学 Q3 CELL & TISSUE ENGINEERING
Cell Transplantation Pub Date : 2025-01-01 Epub Date: 2025-03-28 DOI:10.1177/09636897251315271
Tetsuji Sekiya, Matthew C Holley
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引用次数: 0

摘要

尽管已经取得了显著的进展,但在运动神经元疾病/障碍(如脊髓损伤(SCI))中,将运动功能从大脑恢复到肌肉仍然是一个重大的临床挑战。虽然细胞移植作为重建功能性运动通路的潜在治疗方法已被广泛探索,但仍有相当大的机会来提高其治疗效果。我们回顾了运动通路再生的研究,以确定可以提高细胞移植疗效的分子和超微结构线索。虽然神经胶质瘢痕通常被认为是轴突再生的顽固性障碍,但这主要适用于试图穿透其“核心”到达另一侧的轴突。然而,胶质疤痕表现出“双重性”,具有抗再生的核心和促再生的“表面”。这种表面容忍度归因于促再生分子,如基底膜(BM)中的层粘连蛋白。将供体细胞移植到损伤后塑性形成的骨髓上,可显著提高细胞移植的疗效。具体来说,在促再生BM上形成移植细胞和内源性本体脊髓神经元之间的绕行通路可能有效绕过难治性瘢痕核心,促进运动通路再生。我们认为利用组织的先天修复能力是至关重要的,针对星形胶质细胞和雪旺细胞的损伤后可塑性,特别是那些与脑损伤相关的,在SCI研究领域主要被忽视的,可以将运动系统的修复推进到一个新的阶段。细胞传递途径的转变——从传统的实质内(InP)途径转变为通过实质外(ExP)途径将供体细胞移植到促再生的骨髓上——可能标志着神经再生研究向前迈出了革命性的一步。然而,实际上,InP和ExP方法的互补使用可能为恢复运动通路提供最实质性的好处。我们的目的是加深对细胞移植的理解,并提供一个框架来评估这种治疗方式与其他治疗方式的疗效。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

The Glial Scar: To Penetrate or Not for Motor Pathway Restoration?

The Glial Scar: To Penetrate or Not for Motor Pathway Restoration?

The Glial Scar: To Penetrate or Not for Motor Pathway Restoration?

The Glial Scar: To Penetrate or Not for Motor Pathway Restoration?

Although notable progress has been made, restoring motor function from the brain to the muscles continues to be a substantial clinical challenge in motor neuron diseases/disorders such as spinal cord injury (SCI). While cell transplantation has been widely explored as a potential therapeutic method for reconstructing functional motor pathways, there remains considerable opportunity for enhancing its therapeutic effectiveness. We reviewed studies on motor pathway regeneration to identify molecular and ultrastructural cues that could enhance the efficacy of cell transplantation. While the glial scar is often cited as an intractable barrier to axon regeneration, this mainly applies to axons trying to penetrate its "core" to reach the opposite side. However, the glial scar exhibits a "duality," with an anti-regenerative core and a pro-regenerative "surface." This surface permissiveness is attributed to pro-regenerative molecules, such as laminin in the basement membrane (BM). Transplanting donor cells onto the BM, which forms plastically after injury, may significantly enhance the efficacy of cell transplantation. Specifically, forming detour pathways between transplanted cells and endogenous propriospinal neurons on the pro-regenerative BM may efficiently bypass the intractable scar core and promote motor pathway regeneration. We believe harnessing the tissue's innate repair capacity is crucial, and targeting post-injury plasticity in astrocytes and Schwann cells, especially those associated with the BM that has predominantly been overlooked in the field of SCI research, can advance motor system restoration to a new stage. A shift in cell delivery routes-from the traditional intra-parenchymal (InP) route to the transplantation of donor cells onto the pro-regenerative BM via the extra-parenchymal (ExP) route-may signify a transformative step forward in neuro-regeneration research. Practically, however, the complementary use of both InP and ExP methods may offer the most substantial benefit for restoring motor pathways. We aim for this review to deepen the understanding of cell transplantation and provide a framework for evaluating the efficacy of this therapeutic modality in comparison to others.

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来源期刊
Cell Transplantation
Cell Transplantation 生物-细胞与组织工程
CiteScore
6.00
自引率
3.00%
发文量
97
审稿时长
6 months
期刊介绍: Cell Transplantation, The Regenerative Medicine Journal is an open access, peer reviewed journal that is published 12 times annually. Cell Transplantation is a multi-disciplinary forum for publication of articles on cell transplantation and its applications to human diseases. Articles focus on a myriad of topics including the physiological, medical, pre-clinical, tissue engineering, stem cell, and device-oriented aspects of the nervous, endocrine, cardiovascular, and endothelial systems, as well as genetically engineered cells. Cell Transplantation also reports on relevant technological advances, clinical studies, and regulatory considerations related to the implantation of cells into the body in order to provide complete coverage of the field.
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