TY - JOUR
T1 - Mechanotransduction in trabecular meshwork cells
T2 - Rho/ROCK-dependent responses to substrate stiffness
AU - Du, Ruotian
AU - Ji, Jing
AU - Li, Dongyan
AU - Li, Long
AU - Song, Fan
AU - Fan, Yubo
N1 - Publisher Copyright:
© 2026 The Author(s)
PY - 2026/3
Y1 - 2026/3
N2 - Elevated intraocular pressure (IOP) is a major risk factor for glaucoma. Trabecular meshwork cells (TMCs) play a crucial role in modulating IOP by regulating the aqueous outflow resistance. In glaucoma, the stiffening of trabecular meshwork (TM) tissue is believed to affect aqueous humor outflow, highlighting the importance of substrate stiffness in influencing TMC behavior. However, the molecular mechanisms by which substrate stiffness impacts TMCs are still not fully understood. This study investigates the role of the Rho/ROCK pathway in the effect of substrate stiffness on TMCs. Human TMCs (hTMCs) and porcine TMCs (pTMCs) were cultured on substrates of varying stiffness with Rho/ROCK pathway inhibitor Y-27632 to assess the alterations in Rho/ROCK pathway molecules, cytoskeletal organization, and cellular functions. The results indicate that stiffer substrates generally lead to decreased ROCK levels, multi-oriented F-actin organization, increased cellular contraction, and enhanced cell migration. Notably, these effects were diminished or negated by Rho/ROCK pathway inhibition, which suggests that the Rho/ROCK pathway is at least partially responsible for mediating substrate stiffness affecting TMC behavior. This study highlights the significance of the mechano-microenvironment of the TM in glaucoma pathogenesis and deepens the understanding of the Rho/ROCK pathway as a promising therapeutic target for glaucoma treatment.
AB - Elevated intraocular pressure (IOP) is a major risk factor for glaucoma. Trabecular meshwork cells (TMCs) play a crucial role in modulating IOP by regulating the aqueous outflow resistance. In glaucoma, the stiffening of trabecular meshwork (TM) tissue is believed to affect aqueous humor outflow, highlighting the importance of substrate stiffness in influencing TMC behavior. However, the molecular mechanisms by which substrate stiffness impacts TMCs are still not fully understood. This study investigates the role of the Rho/ROCK pathway in the effect of substrate stiffness on TMCs. Human TMCs (hTMCs) and porcine TMCs (pTMCs) were cultured on substrates of varying stiffness with Rho/ROCK pathway inhibitor Y-27632 to assess the alterations in Rho/ROCK pathway molecules, cytoskeletal organization, and cellular functions. The results indicate that stiffer substrates generally lead to decreased ROCK levels, multi-oriented F-actin organization, increased cellular contraction, and enhanced cell migration. Notably, these effects were diminished or negated by Rho/ROCK pathway inhibition, which suggests that the Rho/ROCK pathway is at least partially responsible for mediating substrate stiffness affecting TMC behavior. This study highlights the significance of the mechano-microenvironment of the TM in glaucoma pathogenesis and deepens the understanding of the Rho/ROCK pathway as a promising therapeutic target for glaucoma treatment.
KW - Glaucoma
KW - Mechanobiology
KW - Rho/ROCK pathway
KW - Substrate stiffness
KW - Trabecular meshwork cell
UR - https://www.scopus.com/pages/publications/105029446535
U2 - 10.1016/j.jbiomech.2026.113164
DO - 10.1016/j.jbiomech.2026.113164
M3 - 文章
C2 - 41643354
AN - SCOPUS:105029446535
SN - 0021-9290
VL - 198
JO - Journal of Biomechanics
JF - Journal of Biomechanics
M1 - 113164
ER -