Blood-spinal cord barrier (BSCB) disruption is thought to contribute to motoneuron (MN) loss in amyotrophic lateral sclerosis (ALS). It is currently unclear whether impairment of the BSCB is the cause or consequence of MN dysfunction and whether its restoration may be directly beneficial. We revealed that SOD1 (G93A) , FUS (ÎNLS) , TDP43 (G298S) , and Tbk1 (+/-) ALS mouse models commonly shared alterations in the BSCB, unrelated to motoneuron loss. We exploit PSAM/PSEM chemogenetics in SOD1 (G93A) mice to demonstrate that the BSCB is rescued by increased MN firing, whereas inactivation worsens it. Moreover, we use DREADD chemogenetics, alone or in multiplexed form, to show that activation of Gi signaling in astrocytes restores BSCB integrity, independently of MN firing, with no effect on MN disease markers and dissociating them from BSCB disruption. We show that astrocytic levels of the BSCB stabilizers Wnt7a and Wnt5a are decreased in SOD1 (G93A) mice and strongly enhanced by Gi signaling, although further decreased by MN inactivation. Thus, we demonstrate that BSCB impairment follows MN dysfunction in ALS pathogenesis but can be reversed by Gi-induced expression of astrocytic Wnt5a/7a.
Multiplexed chemogenetics in astrocytes and motoneurons restore blood-spinal cord barrier in ALS.
星形胶质细胞和运动神经元中的多重化学遗传学可恢复 ALS 患者的血脊髓屏障
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作者:Ouali Alami Najwa, Tang Linyun, Wiesner Diana, Commisso Barbara, Bayer David, Weishaupt Jochen, Dupuis Luc, Wong Phillip, Baumann Bernd, Wirth Thomas, Boeckers Tobias M, Yilmazer-Hanke Deniz, Ludolph Albert, Roselli Francesco
| 期刊: | Life Science Alliance | 影响因子: | 2.900 |
| 时间: | 2020 | 起止号: | 2020 Sep 8; 3(11):e201900571 |
| doi: | 10.26508/lsa.201900571 | 研究方向: | 神经科学、细胞生物学 |
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