AIBP-mediated cholesterol efflux instructs hematopoietic stem and progenitor cell fate.
Qilin GuXiaojie YangJie LvJiaxiong ZhangBo XiaJun-Dae KimRuoyu WangFeng XiongShu MengThomas P ClementsBhavna TandonDaniel S WagnerMiguel F DiazPamela L WenzelYury I MillerDavid TraverJohn P CookeWenbo LiLeonard I ZonKaifu ChenYong-Ping BaiLonghou FangPublished in: Science (New York, N.Y.) (2019)
Hypercholesterolemia, the driving force of atherosclerosis, accelerates the expansion and mobilization of hematopoietic stem and progenitor cells (HSPCs). The molecular determinants connecting hypercholesterolemia with hematopoiesis are unclear. Here, we report that a somite-derived prohematopoietic cue, AIBP, orchestrates HSPC emergence from the hemogenic endothelium, a type of specialized endothelium manifesting hematopoietic potential. Mechanistically, AIBP-mediated cholesterol efflux activates endothelial Srebp2, the master transcription factor for cholesterol biosynthesis, which in turn transactivates Notch and promotes HSPC emergence. Srebp2 inhibition impairs hypercholesterolemia-induced HSPC expansion. Srebp2 activation and Notch up-regulation are associated with HSPC expansion in hypercholesterolemic human subjects. Genome-wide chromatin immunoprecipitation followed by sequencing (ChIP-seq), RNA sequencing (RNA-seq), and assay for transposase-accessible chromatin using sequencing (ATAC-seq) indicate that Srebp2 transregulates Notch pathway genes required for hematopoiesis. Our studies outline an AIBP-regulated Srebp2-dependent paradigm for HSPC emergence in development and HPSC expansion in atherosclerotic cardiovascular disease.
Keyphrases
- single cell
- rna seq
- genome wide
- low density lipoprotein
- transcription factor
- high throughput
- cardiovascular disease
- dna methylation
- endothelial cells
- cardiovascular events
- cell proliferation
- nitric oxide
- gene expression
- copy number
- type diabetes
- dna damage
- bone marrow
- palliative care
- sensitive detection
- quantum dots
- circulating tumor cells
- diabetic rats
- oxidative stress
- induced pluripotent stem cells
- pluripotent stem cells
- case control
- fluorescent probe