Investigator

Shang Wang

Assistant Professor · Stevens Institute of Technology, Biomedical Engineering

SWShang Wang
Papers(2)
In vivo 3D imaging of…Single-Cell Dissectio…
Collaborators(10)
Wenqi HuXiaobo ZhangXiaohong ChangXue YeYicheng WangYi LiYunuo MaoYuxuan ZhengDanhua ShenFuchou Tang
Institutions(4)
Stevens Institute Of …Tsinghua UniversityPeking University Peo…Peking University

Papers

Single-Cell Dissection of the Multiomic Landscape of High-Grade Serous Ovarian Cancer

Abstract High-grade serous cancer (HGSC) is the most common subtype of ovarian cancer. HGSC is highly aggressive with poor patient outcomes, and a deeper understanding of HGSC tumorigenesis could help guide future treatment development. To systematically characterize the underlying pathologic mechanisms and intratumoral heterogeneity in human HGSC, we used an optimized single-cell multiomics sequencing technology to simultaneously analyze somatic copy-number alterations (SCNA), DNA methylation, chromatin accessibility, and transcriptome in individual cancer cells. Genes associated with interferon signaling, metallothioneins, and metabolism were commonly upregulated in ovarian cancer cells. Integrated multiomics analyses revealed that upregulation of interferon signaling and metallothioneins was influenced by both demethylation of their promoters and hypomethylation of satellites and LINE1, and potential key transcription factors regulating glycolysis using chromatin accessibility data were uncovered. In addition, gene expression and DNA methylation displayed similar patterns in matched primary and abdominal metastatic tumor cells of the same genetic lineage, suggesting that metastatic cells potentially preexist in the subclones of primary tumors. Finally, the lineages of cancer cells with higher residual DNA methylation levels and upregulated expression of CCN1 and HSP90AA1 presented greater metastatic potential. This study characterizes the critical genetic, epigenetic, and transcriptomic features and their mutual regulatory relationships in ovarian cancer, providing valuable resources for identifying new molecular mechanisms and potential therapeutic targets for HGSC. Significance: Integrated analysis of multiomic changes and epigenetic regulation in high-grade serous ovarian cancer provides insights into the molecular characteristics of this disease, which could help improve diagnosis and treatment.

68Works
2Papers
21Collaborators
Disease Models, AnimalOvarian Neoplasms

Positions

2019–

Assistant Professor

Stevens Institute of Technology · Biomedical Engineering

2018–

Instructor

Baylor College of Medicine · Molecular Physiology and Biophysics

2014–

Postdoctoral Associate

Baylor College of Medicine · Molecular Physiology and Biophysics

2010–

Research Assistant

University of Houston · Biomedical Optics Laboratory

Education

2014

Ph.D.

University of Houston · Biomedical Engineering

2010

Bachelor of Engineering

Harbin Institute of Technology · Optoelectronic Information Engineering

Country

US

Keywords
BiophotonicsIn vivo imagingFunctional imagingOptical coherence tomographyOptical coherence elastographyBiomechanicsDevelopmental biologyReproductive biology