Single-cell transcriptome and genome analyses of pituitary neuroendocrine tumors

Author:

Cui Yueli12,Li Chao3,Jiang Zhenhuan12,Zhang Shu12,Li Qingqing12,Liu Xixi12,Zhou Yuan12,Li Runting3,Wei Liudong3,Li Lianwang3,Zhang Qi4,Wen Lu12,Tang Fuchou12,Zhou Dabiao35

Affiliation:

1. Beijing Advanced Innovation Center for Genomics, Biomedical Pioneering Innovation Center, School of Life Sciences, Peking University, Beijing, China

2. Ministry of Education Key Laboratory of Cell Proliferation and Differentiation, Beijing, China

3. Department of Neurosurgery, Beijing Tiantan Hospital, Capital Medical University, Beijing, China

4. Department of Neuropathology, Beijing Neurosurgical Institute, Beijing, China

5. China National Clinical Research Center for Neurological Disease, Beijing, China

Abstract

Abstract Background Pituitary neuroendocrine tumors (PitNETs) are the second most common intracranial tumor. We lacked a comprehensive understanding of the pathogenesis and heterogeneity of these tumors. Methods We performed high-precision single-cell RNA sequencing for 2679 individual cells obtained from 23 surgically resected samples of the major subtypes of PitNETs from 21 patients. We also performed single-cell multi-omics sequencing for 238 cells from 5 patients. Results Unsupervised clustering analysis distinguished all tumor subtypes, which was in accordance with the classification based on immunohistochemistry and provided additional information. We identified 3 normal endocrine cell types: somatotrophs, lactotrophs, and gonadotrophs. Comparisons of tumor and matched normal cells showed that differentially expressed genes of gonadotroph tumors were predominantly downregulated, while those of somatotroph and lactotroph tumors were mainly upregulated. We identified novel tumor-related genes, such as AMIGO2, ZFP36, BTG1, and DLG5. Tumors expressing multiple hormone genes showed little transcriptomic heterogeneity. Furthermore, single-cell multi-omics analysis demonstrated that the tumor had a relatively uniform pattern of genome with slight heterogeneity in copy number variations. Conclusions Our single-cell transcriptome and single-cell multi-omics analyses provide novel insights into the characteristics and heterogeneity of these complex neoplasms for the identification of biomarkers and therapeutic targets.

Funder

National Natural Science Foundation of China

National Center for Protein Sciences

Peking University

Publisher

Oxford University Press (OUP)

Subject

Cancer Research,Clinical Neurology,Oncology

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