Circulating exosomal circRNA-miRNA-mRNA network in a familial partial lipodystrophy type 3 family with a novel PPARG frameshift mutation c.418dup

被引:0
作者
Zhou, Liyuan [1 ,2 ]
Li, Shunhua [1 ]
Ren, Jing [1 ]
Wang, Dongmei [1 ]
Yu, Ruiqi [1 ]
Zhao, Yuxing [1 ]
Zhang, Qian [1 ]
Xiao, Xinhua [1 ]
机构
[1] Chinese Acad Med Sci, Key Lab Endocrinol Natl Hlth Commiss, Diabet Res Ctr, Dept Endocrinol,Peking Union Med Coll Hosp,Peking, Beijing, Peoples R China
[2] Capital Med Univ, Beijing Chaoyang Hosp, Dept Endocrinol, Beijing, Peoples R China
来源
AMERICAN JOURNAL OF PHYSIOLOGY-ENDOCRINOLOGY AND METABOLISM | 2024年 / 327卷 / 03期
关键词
circRNA-miRNA-mRNA network; exosome; familial partial lipodystrophy; metabolic disorders; PPARG mutation; INSULIN-RESISTANCE; LIPOLYSIS; ADIPOCYTES; EXPRESSION; PREDICTION; MICRORNAS; BIOLOGY; TARGET; AGPAT2; FAT;
D O I
10.1152/ajpendo.00094.2024
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Familial partial lipodystrophy 3 (FPLD3) is a rare genetic disorder caused by loss-of-function mutations in the PPARG gene, characterized by a selective absence of subcutaneous fat and associated metabolic complications. However, the molecular mechanisms of FPLD3 remain unclear. In this study, we recruited a 17-yr-old Chinese female with FPLD3 and her family, identifying a novel PPARG frameshift mutation (exon 4: c.418dup: p.R140Kfs*7)that truncates the PPARy y protein at the seventh amino acid, significantly fi cantly expanding the genetic landscape of FPLD3. By performing next-generation sequencing of circular RNAs (circRNAs), microRNAs (miRNAs), and mRNAs in plasma exosomes, we discovered 59 circRNAs, 57 miRNAs, and 299 mRNAs were significantly altered in the mutation carriers compared with the healthy controls. Integration analysis highlighted that the circ_0001597miR-671-5p pair and 18 mRNAs might be incorporated into the metabolic regulatory networks of the FPLD3 induced by the novel PPARG mutation. Functional annotation suggested that these genes were significantly enriched in glucose- and lipid metabolism-related pathways. Among the circRNA-miRNA-mRNA network, we identified wo critical regulators, early growth response-1 (EGR1), a key transcription factor known for its role in insulin signaling pathways and lipid metabolism, and 1-acylglycerol-3-phosphate O-acyltransferase 3 ( AGPAT3 ), which gets involved in the biosynthesis of triglycerides and lipolysis. Circ_0001597 regulates the expression of these genes through miR-671-5p, potentially contributing to the pathophysiology of FPLD3. Overall, this study clarified fied a circulating exosomal circRNA-miRNA-mRNA network in a FPLD3 family with a novel PPARG mutation, providing evidence for exploring promising biomarkers and developing novel therapeutic strategies for this rare genetic disorder.
引用
收藏
页码:E357 / E370
页数:14
相关论文
共 52 条
[1]   AGPAT2 is mutated in congenital generalized lipodystrophy linked to chromosome 9q34 [J].
Agarwal, AK ;
Arioglu, E ;
de Almeida, S ;
Akkoc, N ;
Taylor, SI ;
Bowcock, AM ;
Barnes, RI ;
Garg, A .
NATURE GENETICS, 2002, 31 (01) :21-23
[2]   The microRNA.org resource: targets and expression [J].
Betel, Doron ;
Wilson, Manda ;
Gabow, Aaron ;
Marks, Debora S. ;
Sander, Chris .
NUCLEIC ACIDS RESEARCH, 2008, 36 :D149-D153
[3]   Egr1 loss-of-function promotes beige adipocyte differentiation and activation specifically in inguinal subcutaneous white adipose tissue [J].
Bleher, Marianne ;
Meshko, Berbang ;
Cacciapuoti, Isabelle ;
Gergondey, Rachel ;
Kovacs, Yoann ;
Duprez, Delphine ;
L'Honore, Aurore ;
Havis, Emmanuelle .
SCIENTIFIC REPORTS, 2020, 10 (01)
[4]   Gene-gene and gene-environment interactions in lipodystrophy: Lessons learned from natural PPARγ mutants [J].
Broekema, M. F. ;
Savage, D. B. ;
Monajemi, H. ;
Kalkhoven, E. .
BIOCHIMICA ET BIOPHYSICA ACTA-MOLECULAR AND CELL BIOLOGY OF LIPIDS, 2019, 1864 (05) :715-732
[5]   PPARγ and Diabetes: Beyond the Genome and Towards Personalized Medicine [J].
Cataldi, Simona ;
Costa, Valerio ;
Ciccodicola, Alfredo ;
Aprile, Marianna .
CURRENT DIABETES REPORTS, 2021, 21 (06)
[6]   AGPAT2 is essential for postnatal development and maintenance of white and brown adipose tissue [J].
Cautivo, Kelly M. ;
Lizama, Carlos O. ;
Tapia, Pablo J. ;
Agarwal, Anil K. ;
Garg, Abhimanyu ;
Horton, Jay D. ;
Cortes, Vctor A. .
MOLECULAR METABOLISM, 2016, 5 (07) :491-505
[7]   Hypertriglyceridemia [J].
Chait, Alan .
ENDOCRINOLOGY AND METABOLISM CLINICS OF NORTH AMERICA, 2022, 51 (03) :539-555
[8]   Insulin Inhibits Lipolysis in Adipocytes via the Evolutionarily Conserved mTORC1-Egr1-ATGL-Mediated Pathway [J].
Chakrabarti, Partha ;
Kim, Ju Youn ;
Singh, Maneet ;
Shin, Yu-Kyong ;
Kim, Jessica ;
Kumbrink, Joerg ;
Wu, Yuanyuan ;
Lee, Mi-Jeong ;
Kirsch, Kathrin H. ;
Fried, Susan K. ;
Kandror, Konstantin V. .
MOLECULAR AND CELLULAR BIOLOGY, 2013, 33 (18) :3659-3666
[9]   Mammalian Target of Rapamycin Complex 1 Suppresses Lipolysis, Stimulates Lipogenesis, and Promotes Fat Storage [J].
Chakrabarti, Partha ;
English, Taylor ;
Shi, Jun ;
Smas, Cynthia M. ;
Kandror, Konstantin V. .
DIABETES, 2010, 59 (04) :775-781
[10]   The role of miRNAs carried by extracellular vesicles in type 2 diabetes and its complications [J].
Chao, Yining ;
Gu, Tianwei ;
Zhang, Zhou ;
Wu, Tianyu ;
Wang, Jin ;
Bi, Yan .
JOURNAL OF DIABETES, 2023, 15 (10) :838-852