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Lan Wang

Publications and source records attributed to Lan Wang.

3 recordsLinked to original sources

UNC5B regulates epithelial-to-mesenchymal transition through a SRC-ZEB1 signaling axis to facilitate pancreatic cancer metastasis.

Metastatic dissemination is the principal cause of death in pancreatic ductal adenocarcinoma (PDAC), yet the molecular determinants that enable this process remain poorly understood. Here, we identify the axon guidance receptor UNC5B as a central regulator of PDAC metastasis. Using both genetically engineered KPCU and orthotopic mouse models, we demonstrate that loss of UNC5B completely abolishes metastatic spread, reduces tumor proliferative capacity, increases intratumoral necrosis, confining tumors to the pancreas with no invasion into adjacent tissues or lymph nodes and preserving epithelial morphology. Mechanistically, UNC5B drives epithelial-to-mesenchymal transition (EMT) and invasion through activation of the SRC-ZEB1 axis. Notably, UNC5B specifically engages ZEB1 to drive EMT, without altering other canonical EMT transcription factors such as SNAIL or TWIST1. Pharmacological degradation of exogenous UNC5B using a targeted protein degrader (degron) modulated EMT and invasive behavior in PDAC cells. Acute depletion of UNC5B resulted in a marked reduction in EMT scores, accompanied by decreased ZEB1 and SRC levels. Together, these findings identify UNC5B as a central molecular hub governing metastatic competence in PDAC by promoting EMT and invasion.

Epithelial-Mesenchymal Transition

Loss of chromosome Y in hematopoietic cells: mechanisms and implications for human disease.

The chromosome Y, once thought to function primarily in male reproduction, is now recognized to have broader biological roles. Hematopoietic loss of chromosome Y (LOY) is one of the most frequent somatic genomic alterations in male blood, with prevalence increasing markedly with age. Advances in technology have enabled robust detection of LOY in blood at both the population scale and the single-cell level. Hematopoietic LOY arises from mitotic chromosome mis-segregation and is influenced by inherited genetic variation, environmental exposures, and aging. Population-based genome-wide association study (GWAS) analyses have identified robust epidemiological associations between hematopoietic LOY and cardiovascular disease, brain disease, immune disorders, and cancer. Mechanistic studies demonstrate that LOY has functional consequences, including altered gene expression, immune dysregulation, and clonal expansion. Some findings are strongly supported by CRISPR-based LOY mouse and cellular models, which recapitulate key disease-related phenotypes. Collectively, these findings establish hematopoietic LOY as a biologically meaningful form of somatic mosaicism with important implications for disease susceptibility.

Humans

Deficiency of Setd2 in mesenchymal stem cells facilitates the progression of myelodysplastic syndrome to leukemia.

While previous studies have indicated that H3K36me3, which is mediated by Setd2, may regulate the cell fate of mesenchymal stem cells (MSCs) both in vitro and in vivo, the specific role of MSCs in the onset and progression of MDS remains unclear. Thus, the histone methyltransferase Setd2 is implicated in MDS-associated leukemia. This study utilized NUP98-HOXD13 (NHD13) mice with targeted deletion of Setd2 in MSCs. Here, we found that Setd2-deficient mice undergo faster leukemia transformation than control mice do, as evidenced by the abnormal differentiation of hematopoietic stem progenitor cells in the bone marrow, abnormal hematopoiesis, and increased number of blast cells. Compared with that of control mice, the morphology of NHD13 mouse MSCs with Setd2 deficiency was irregular, and the support function of hematopoietic cells was compromised. This study demonstrated that targeted deletion of Setd2 in MSCs facilitates the advancement of MDS. Furthermore, we identified increased expression of coagulation factor XII as a key leukemic transformation mediator in Setd2-deficient MSCs. Moreover, we found that SETD2 expression is significantly lower in high-risk MDS patients than in low-risk MDS patients, further suggesting that the targeted deletion of Setd2 in MSCs is associated with MDS progression. Collectively, our results suggest that Setd2 in MSCs suppresses MDS progression to leukemia through coagulation factor XII-mediated suppression of the stem cell support capacity of MSCs. Overall, this study sheds light on the pathogenesis of MDS and provides a therapeutic strategy for regulating the microenvironment in patients with MDS who cannot be cured by haematopoietic stem cell transplantation.

Animals