Cross-species identification of conserved and divergent locomotor kinematic strategies using AutoGaitA
成果类型:
Article
署名作者:
Hosseini, Mahan; Klein, Ines; Wunderle, Veronika; Haustein, Moritz; Semmler, Carolin; Kramer, Ann-Kathrin; Tolve, Marianna; Mardare, Vlad; Galvao, Ana; Kuzu, Taylan D.; Grefkes, Christian; Korotkova, Tatiana; Buschges, Ansgar; Fink, Gereon R.; Weiss, Peter H.; Daun, Silvia; Gatto, Graziana
署名单位:
Helmholtz Association; Julich Research Centre; University of Cologne; University of Cologne; University of Cologne; Goethe University Frankfurt; Goethe University Frankfurt; Goethe University Frankfurt Hospital
刊物名称:
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
ISSN/ISSBN:
0027-8424; 1091-6490
DOI:
10.1073/pnas.2534093123
发表日期:
2026-09-01
页码:
e2534093123
关键词:
motor control
adaptation
BEHAVIOR
Aging
computational framework
AGE
performance
drosophila
walking
摘要:
Distinct behaviors require the nervous system to execute specialized motor programs, each characterized by unique patterns of body muscle coordination. Whether the execution and adaptation of these programs follow conserved principles across species and perturbations remains unclear. To compare motor programs across species, perturbations, and behaviors, we developed the Python toolbox Automated Gait Analysis (AutoGaitA). Using AutoGaitA and inferring from kinematics, we found that locomotor programs in flies, mice, and humans rely on diverse mechanisms to generate limb propulsive strength, but employ a similar distal-to-proximal gradient of joint movement velocities. In addition, we showed that aging induces a loss of propulsive strength in all species while preserving the velocity gradient. Furthermore, we observed that in mice, locomotor programs adapt as an integrated function of concomitant perturbations, namely aging and task difficulty. Taken together, using our newly developed versatile quantitative framework AutoGaitA, we began to reveal the conserved and divergent mechanisms underlying the execution of locomotor programs in physiological and perturbed states.
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