1.Gut dysbiosis impairs intestinal renewal and lipid absorption in Scarb2 deficiency-associated neurodegeneration.
Yinghui LI ; Xingchen LIU ; Xue SUN ; Hui LI ; Shige WANG ; Wotu TIAN ; Chen XIANG ; Xuyuan ZHANG ; Jiajia ZHENG ; Haifang WANG ; Liguo ZHANG ; Li CAO ; Catherine C L WONG ; Zhihua LIU
Protein & Cell 2024;15(11):818-839
Scavenger receptor class B, member 2 (SCARB2) is linked to Gaucher disease and Parkinson's disease. Deficiency in the SCARB2 gene causes progressive myoclonus epilepsy (PME), a rare group of inherited neurodegenerative diseases characterized by myoclonus. We found that Scarb2 deficiency in mice leads to age-dependent dietary lipid malabsorption, accompanied with vitamin E deficiency. Our investigation revealed that Scarb2 deficiency is associated with gut dysbiosis and an altered bile acid pool, leading to hyperactivation of FXR in intestine. Hyperactivation of FXR impairs epithelium renewal and lipid absorption. Patients with SCARB2 mutations have a severe reduction in their vitamin E levels and cannot absorb dietary vitamin E. Finally, inhibiting FXR or supplementing vitamin E ameliorates the neuromotor impairment and neuropathy in Scarb2 knockout mice. These data indicate that gastrointestinal dysfunction is associated with SCARB2 deficiency-related neurodegeneration, and SCARB2-associated neurodegeneration can be improved by addressing the nutrition deficits and gastrointestinal issues.
Animals
;
Mice
;
Dysbiosis/metabolism*
;
Mice, Knockout
;
Humans
;
Lysosomal Membrane Proteins/genetics*
;
Receptors, Scavenger/genetics*
;
Gastrointestinal Microbiome
;
Myoclonic Epilepsies, Progressive/genetics*
;
Vitamin E Deficiency/complications*
;
Neurodegenerative Diseases/genetics*
;
Bile Acids and Salts/metabolism*
;
Male
;
Lipid Metabolism
;
Intestinal Mucosa/pathology*
2.4.4 Å Resolution Cryo-EM structure of human mTOR Complex 1.
Huirong YANG ; Jia WANG ; Mengjie LIU ; Xizi CHEN ; Min HUANG ; Dan TAN ; Meng-Qiu DONG ; Catherine C L WONG ; Jiawei WANG ; Yanhui XU ; Hong-Wei WANG
Protein & Cell 2016;7(12):878-887
Mechanistic target of rapamycin (mTOR) complex 1 (mTORC1) integrates signals from growth factors, cellular energy levels, stress and amino acids to control cell growth and proliferation through regulating translation, autophagy and metabolism. Here we determined the cryo-electron microscopy structure of human mTORC1 at 4.4 Å resolution. The mTORC1 comprises a dimer of heterotrimer (mTOR-Raptor-mLST8) mediated by the mTOR protein. The complex adopts a hollow rhomboid shape with 2-fold symmetry. Notably, mTORC1 shows intrinsic conformational dynamics. Within the complex, the conserved N-terminal caspase-like domain of Raptor faces toward the catalytic cavity of the kinase domain of mTOR. Raptor shows no caspase activity and therefore may bind to TOS motif for substrate recognition. Structural analysis indicates that FKBP12-Rapamycin may generate steric hindrance for substrate entry to the catalytic cavity of mTORC1. The structure provides a basis to understand the assembly of mTORC1 and a framework to characterize the regulatory mechanism of mTORC1 pathway.
Cell Line
;
Cryoelectron Microscopy
;
methods
;
Humans
;
Mechanistic Target of Rapamycin Complex 1
;
Multiprotein Complexes
;
chemistry
;
ultrastructure
;
Protein Structure, Quaternary
;
TOR Serine-Threonine Kinases
;
chemistry
;
ultrastructure

Result Analysis
Print
Save
E-mail