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脊髓感觉运动回路在成年猫交错性胸段侧半横切术后的后肢运动恢复中发挥着重要作用,但在四足运动过程中无法恢复姿势和肢体间协调性。

Spinal sensorimotor circuits play a prominent role in hindlimb locomotor recovery after staggered thoracic lateral hemisections but cannot restore posture and interlimb coordination during quadrupedal locomotion in adult cats.

作者信息

Audet Johannie, Yassine Sirine, Lecomte Charly G, Mari Stephen, Félix Soucy, Caroline Morency, Merlet Angèle N, Harnie Jonathan, Beaulieu Claudie, Gendron Louis, Rybak Ilya A, Prilutsky Boris I, Frigon Alain

机构信息

Department of Pharmacology-Physiology, Faculty of Medicine and Health Sciences, Centre de recherche du CHUS, Université de Sherbrooke, Sherbrooke, Quebec J1H 5N4, Canada.

Department of Neurobiology and Anatomy, College of Medicine, Drexel University, Philadelphia, Pennsylvania 19129, USA.

出版信息

bioRxiv. 2023 Mar 25:2023.03.23.533936. doi: 10.1101/2023.03.23.533936.

Abstract

UNLABELLED

Spinal sensorimotor circuits interact with supraspinal and peripheral inputs to generate quadrupedal locomotion. Ascending and descending spinal pathways ensure coordination between the fore-and hindlimbs. Spinal cord injury disrupts these pathways. To investigate the control of interlimb coordination and hindlimb locomotor recovery, we performed two lateral thoracic hemisections placed on opposite sides of the cord (right T5-T6 and left T10-T11) at an interval of approximately two months in eight adult cats. In three cats, we then made a complete spinal transection caudal to the second hemisection at T12-T13. We collected electromyography and kinematic data during quadrupedal and hindlimb-only locomotion before and after spinal lesions. We show that 1) cats spontaneously recover quadrupedal locomotion following staggered hemisections but require balance assistance after the second one, 2) coordination between the fore-and hindlimbs displays 2:1 patterns and becomes weaker and more variable after both hemisections, 3) left-right asymmetries in hindlimb stance and swing durations appear after the first hemisection and reverse after the second, and 4) support periods reorganize after staggered hemisections to favor support involving both forelimbs and diagonal limbs. Cats expressed hindlimb locomotion the day following spinal transection, indicating that lumbar sensorimotor circuits play a prominent role in hindlimb locomotor recovery after staggered hemisections. These results reflect a series of changes in spinal sensorimotor circuits that allow cats to maintain and recover some level of quadrupedal locomotor functionality with diminished motor commands from the brain and cervical cord, although the control of posture and interlimb coordination remains impaired.

SIGNIFICANCE STATEMENT

Coordinating the limbs during locomotion depends on pathways in the spinal cord. We used a spinal cord injury model that disrupts communication between the brain and spinal cord by sectioning half of the spinal cord on one side and then about two months later, half the spinal cord on the other side at different levels of the thoracic cord in cats. We show that despite a strong contribution from neural circuits located below the second spinal cord injury in the recovery of hindlimb locomotion, the coordination between the forelimbs and hindlimbs weakens and postural control is impaired. We can use our model to test approaches to restore the control of interlimb coordination and posture during locomotion after spinal cord injury.

摘要

未标注

脊髓感觉运动回路与脊髓上和外周输入相互作用以产生四足动物的运动。脊髓的上行和下行通路确保前肢和后肢之间的协调。脊髓损伤会破坏这些通路。为了研究肢体间协调的控制和后肢运动恢复,我们在八只成年猫身上,以大约两个月的间隔,在脊髓的相对两侧进行了两次胸段半侧脊髓横切术(右侧T5 - T6和左侧T10 - T11)。然后,在三只猫中,我们在T12 - T13处,在第二次半侧脊髓横切术的尾端进行了一次完全脊髓横断。我们在脊髓损伤前后的四足动物运动和仅后肢运动期间收集了肌电图和运动学数据。我们发现:1)猫在交错半侧脊髓横切术后能自发恢复四足动物运动,但在第二次手术后需要平衡辅助;2)前肢和后肢之间的协调呈现2:1模式,在两次半侧脊髓横切术后变得更弱且更不稳定;3)后肢站立和摆动持续时间的左右不对称在第一次半侧脊髓横切术后出现,并在第二次后反转;4)在交错半侧脊髓横切术后,支撑期重新组织,以利于涉及前肢和对角肢的支撑。猫在脊髓横断后的第二天就表现出后肢运动,表明腰段感觉运动回路在交错半侧脊髓横切术后的后肢运动恢复中起重要作用。这些结果反映了脊髓感觉运动回路中的一系列变化,尽管姿势和肢体间协调的控制仍然受损,但这些变化使猫能够在来自大脑和颈髓的运动指令减少的情况下,维持并恢复一定程度的四足动物运动功能。

意义声明

运动过程中肢体的协调依赖于脊髓中的通路。我们使用了一种脊髓损伤模型,通过在猫的胸段脊髓不同水平,先在一侧横切脊髓的一半,然后大约两个月后,在另一侧横切脊髓的一半,来破坏大脑与脊髓之间的通信。我们表明,尽管位于第二次脊髓损伤下方的神经回路在后肢运动恢复中起很大作用,但前肢和后肢之间的协调会减弱,姿势控制也会受损。我们可以使用我们的模型来测试恢复脊髓损伤后运动过程中肢体间协调和姿势控制的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e136/10055434/65bb75f88c85/nihpp-2023.03.23.533936v1-f0001.jpg

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