2.Differential stem cell aging kinetics in Hutchinson-Gilford progeria syndrome and Werner syndrome.
Zeming WU ; Weiqi ZHANG ; Moshi SONG ; Wei WANG ; Gang WEI ; Wei LI ; Jinghui LEI ; Yu HUANG ; Yanmei SANG ; Piu CHAN ; Chang CHEN ; Jing QU ; Keiichiro SUZUKI ; Juan Carlos Izpisua BELMONTE ; Guang-Hui LIU
Protein & Cell 2018;9(4):333-350
Hutchinson-Gilford progeria syndrome (HGPS) and Werner syndrome (WS) are two of the best characterized human progeroid syndromes. HGPS is caused by a point mutation in lamin A (LMNA) gene, resulting in the production of a truncated protein product-progerin. WS is caused by mutations in WRN gene, encoding a loss-of-function RecQ DNA helicase. Here, by gene editing we created isogenic human embryonic stem cells (ESCs) with heterozygous (G608G/+) or homozygous (G608G/G608G) LMNA mutation and biallelic WRN knockout, for modeling HGPS and WS pathogenesis, respectively. While ESCs and endothelial cells (ECs) did not present any features of premature senescence, HGPS- and WS-mesenchymal stem cells (MSCs) showed aging-associated phenotypes with different kinetics. WS-MSCs had early-onset mild premature aging phenotypes while HGPS-MSCs exhibited late-onset acute premature aging characterisitcs. Taken together, our study compares and contrasts the distinct pathologies underpinning the two premature aging disorders, and provides reliable stem-cell based models to identify new therapeutic strategies for pathological and physiological aging.
Aging
;
genetics
;
physiology
;
DNA Helicases
;
genetics
;
Human Embryonic Stem Cells
;
metabolism
;
physiology
;
Humans
;
Kinetics
;
Lamin Type A
;
genetics
;
Mesenchymal Stem Cells
;
metabolism
;
physiology
;
Mutation
;
Progeria
;
genetics
;
physiopathology
;
Werner Syndrome
;
genetics
;
physiopathology
3.Single-nucleus transcriptomic landscape of primate hippocampal aging.
Hui ZHANG ; Jiaming LI ; Jie REN ; Shuhui SUN ; Shuai MA ; Weiqi ZHANG ; Yang YU ; Yusheng CAI ; Kaowen YAN ; Wei LI ; Baoyang HU ; Piu CHAN ; Guo-Guang ZHAO ; Juan Carlos Izpisua BELMONTE ; Qi ZHOU ; Jing QU ; Si WANG ; Guang-Hui LIU
Protein & Cell 2021;12(9):695-716
The hippocampus plays a crucial role in learning and memory, and its progressive deterioration with age is functionally linked to a variety of human neurodegenerative diseases. Yet a systematic profiling of the aging effects on various hippocampal cell types in primates is still missing. Here, we reported a variety of new aging-associated phenotypic changes of the primate hippocampus. These include, in particular, increased DNA damage and heterochromatin erosion with time, alongside loss of proteostasis and elevated inflammation. To understand their cellular and molecular causes, we established the first single-nucleus transcriptomic atlas of primate hippocampal aging. Among the 12 identified cell types, neural transiently amplifying progenitor cell (TAPC) and microglia were most affected by aging. In-depth dissection of gene-expression dynamics revealed impaired TAPC division and compromised neuronal function along the neurogenesis trajectory; additionally elevated pro-inflammatory responses in the aged microglia and oligodendrocyte, as well as dysregulated coagulation pathways in the aged endothelial cells may contribute to a hostile microenvironment for neurogenesis. This rich resource for understanding primate hippocampal aging may provide potential diagnostic biomarkers and therapeutic interventions against age-related neurodegenerative diseases.
4.FOXO3-engineered human mesenchymal progenitor cells efficiently promote cardiac repair after myocardial infarction.
Jinghui LEI ; Si WANG ; Wang KANG ; Qun CHU ; Zunpeng LIU ; Liang SUN ; Yun JI ; Concepcion Rodriguez ESTEBAN ; Yan YAO ; Juan Carlos Izpisua BELMONTE ; Piu CHAN ; Guang-Hui LIU ; Weiqi ZHANG ; Moshi SONG ; Jing QU
Protein & Cell 2021;12(2):145-151