Searching the Resource Information Network

Our searching services are busy right now. Please try again later

  • Register
X
Forgot Password

If you have forgotten your password you can enter your email here and get a temporary password sent to your email.

X

Leaving Community

Are you sure you want to leave this community? Leaving the community will revoke any permissions you have been granted in this community.

No
Yes

GRP75 Modulates Endoplasmic Reticulum-Mitochondria Coupling and Accelerates Ca2+-Dependent Endothelial Cell Apoptosis in Diabetic Retinopathy.

Yan Li | Hong-Ying Li | Jun Shao | Lingpeng Zhu | Tian-Hua Xie | Jiping Cai | Wenjuan Wang | Meng-Xia Cai | Zi-Li Wang | Yong Yao | Ting-Ting Wei
Biomolecules | 2022

Endoplasmic reticulum (ER) and mitochondrial dysfunction play fundamental roles in the pathogenesis of diabetic retinopathy (DR). However, the interrelationship between the ER and mitochondria are poorly understood in DR. Here, we established high glucose (HG) or advanced glycosylation end products (AGE)-induced human retinal vascular endothelial cell (RMEC) models in vitro, as well as a streptozotocin (STZ)-induced DR rat model in vivo. Our data demonstrated that there was increased ER-mitochondria coupling in the RMECs, which was accompanied by elevated mitochondrial calcium ions (Ca2+) and mitochondrial dysfunction under HG or AGE incubation. Mechanistically, ER-mitochondria coupling was increased through activation of the IP3R1-GRP75-VDAC1 axis, which transferred Ca2+ from the ER to the mitochondria. Elevated mitochondrial Ca2+ led to an increase in mitochondrial ROS and a decline in mitochondrial membrane potential. These events resulted in the elevation of mitochondrial permeability and induced the release of cytochrome c from the mitochondria into the cytoplasm, which further activated caspase-3 and promoted apoptosis. The above phenomenon was also observed in tunicamycin (TUN, ER stress inducer)-treated cells. Meanwhile, BAPTA-AM (calcium chelator) rescued mitochondrial dysfunction and apoptosis in DR, which further confirmed of our suspicions. In addition, 4-phenylbutyric acid (4-PBA), an ER stress inhibitor, was shown to reverse retinal dysfunction in STZ-induced DR rats in vivo. Taken together, our findings demonstrated that DR fueled the formation of ER-mitochondria coupling via the IP3R1-GRP75-VDAC1 axis and accelerated Ca2+-dependent cell apoptosis. Our results demonstrated that inhibition of ER-mitochondrial coupling, including inhibition of GRP75 or Ca2+ overload, may be a potential therapeutic target in DR.

Pubmed ID: 36551205

Research resources used in this publication

None found

Additional research tools detected in this publication

Antibodies used in this publication

None found

Associated grants

  • Agency: National Natural Science Foundation of China,
    Id: 82000912
  • Agency: National Natural Science Foundation of China,
    Id: 82201220
  • Agency: Natural Science Foundation of Jiangsu Province,
    Id: BK20200163
  • Agency: Natural Science Foundation of Jiangsu Province,
    Id: BK20190149
  • Agency: Postdoctoral Science Foundation of China,
    Id: 2020M681668
  • Agency: Postdoctoral Science Foundation of China,
    Id: 2020M681669
  • Agency: Youth Project of Wuxi Municipal Health Commission,
    Id: Q202022
  • Agency: Youth Project of Wuxi Municipal Health Commission,
    Id: Q202042
  • Agency: Wuxi Taihu Lake Talent Plan,
    Id: 2020-THRCTD-1

Publication data is provided by the National Library of Medicine ® and PubMed ®. Data is retrieved from PubMed ® on a weekly schedule. For terms and conditions see the National Library of Medicine Terms and Conditions.

This is a list of tools and resources that we have found mentioned in this publication.


SD (tool)

RRID:RGD_70508

Rattus norvegicus with name SD from RGD.

View all literature mentions