Intrinsic retinoic acid synthesis is required for oligodendrocyte progenitor expansion during CNS remyelination.

IF 4.2 3区 医学 Q2 NEUROSCIENCES
Frontiers in Cellular Neuroscience Pub Date : 2025-02-24 eCollection Date: 2025-01-01 DOI:10.3389/fncel.2025.1550139
Sonia E Nanescu, Natacha M Wathieu, Lauren Rosko, David S Cha, Mahesh N Kumar, Rafal T Olszewski, Joan Reger, Maryna Baydyuk, Alisha N Dua, Wojciech Krezel, Violetta Zujovic, Jeffrey K Huang
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Abstract

Myelin regeneration (remyelination) in the CNS depends on the recruitment, proliferation and differentiation of oligodendrocyte precursor cells (OPCs) at demyelinated lesions. However, despite the presence of OPCs, very few oligodendrocytes and myelin are regenerated in chronic multiple sclerosis (MS) lesions for reasons that remain poorly understood. Here, using a spontaneous remyelination model in mice, we found that retinaldehyde dehydrogenase 2 (Raldh2), a rate-limiting enzyme for retinoic acid (RA) synthesis, is upregulated in OPCs and in a subpopulation of microglia/macrophages during remyelination. Tamoxifen induced deletion of Raldh2 globally, or conditionally in OPCs, resulted in significantly fewer proliferating OPCs in lesions, leading to decreased oligodendrocyte numbers and myelin density. Moreover, induced deletion of Raldh2 globally also resulted in increased microglia/macrophage density in lesions. Further, exogenous RA delivery into lesions significantly increased oligodendrocyte lineage cells, while also decreasing proinflammatory microglia/macrophages, with no significant effect on anti-inflammatory microglia/macrophages. Postmortem MS brain sections revealed Raldh2 was absent in the majority of OPCs in chronic inactive lesions compared to the other lesion types. These results suggest that Raldh2 upregulation in lesions is critical for OPC proliferation during remyelination, and reveal that the failure to regenerate sufficient oligodendrocytes and myelin in chronic MS lesions may arise from impaired OPC expansion due to the failure to intrinsically synthesize RA.

在中枢神经系统髓鞘再生过程中,少突胶质细胞祖细胞的扩增需要内在维甲酸的合成。
中枢神经系统髓鞘再生(髓鞘再生)依赖于脱髓鞘病变处少突胶质前体细胞(OPCs)的募集、增殖和分化。然而,尽管存在OPCs,很少少突胶质细胞和髓鞘在慢性多发性硬化症(MS)病变中再生,原因尚不清楚。通过小鼠的自发髓鞘再生模型,我们发现视黄醛脱氢酶2 (Raldh2),一种维甲酸(RA)合成的限速酶,在OPCs和小胶质细胞/巨噬细胞亚群中在髓鞘再生过程中上调。他莫昔芬诱导Raldh2全局性或有条件地在OPCs中缺失,导致病变中增殖的OPCs显著减少,导致少突胶质细胞数量和髓磷脂密度下降。此外,诱导Raldh2全局缺失也导致病变中小胶质细胞/巨噬细胞密度增加。此外,外源性RA进入病变显著增加少突胶质细胞系细胞,同时也减少促炎小胶质细胞/巨噬细胞,对抗炎小胶质细胞/巨噬细胞无显著影响。死后MS脑切片显示,与其他类型的病变相比,慢性非活性病变的大多数OPCs中没有Raldh2。这些结果表明,病变中Raldh2的上调对于髓鞘再生过程中OPC的增殖至关重要,并揭示慢性MS病变中不能再生足够的少突胶质细胞和髓鞘可能是由于无法内在合成RA而导致OPC扩张受损所致。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
7.90
自引率
3.80%
发文量
627
审稿时长
6-12 weeks
期刊介绍: Frontiers in Cellular Neuroscience is a leading journal in its field, publishing rigorously peer-reviewed research that advances our understanding of the cellular mechanisms underlying cell function in the nervous system across all species. Specialty Chief Editors Egidio D‘Angelo at the University of Pavia and Christian Hansel at the University of Chicago are supported by an outstanding Editorial Board of international researchers. This multidisciplinary open-access journal is at the forefront of disseminating and communicating scientific knowledge and impactful discoveries to researchers, academics, clinicians and the public worldwide.
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