Ufmylation of UFBP1 Is Dispensable for Endoplasmic Reticulum Stress Response, Embryonic Development, and Cardiac and Intestinal Homeostasis

被引:3
作者
Tandra, Varsha [1 ]
Anderson, Travis [1 ]
Ayala, Juan D. [1 ]
Weintraub, Neal L. [1 ,2 ]
Singh, Nagendra [3 ]
Li, Honglin [3 ]
Li, Jie [1 ,2 ]
机构
[1] Augusta Univ, Med Coll Georgia, Vasc Biol Ctr, Augusta, GA 30912 USA
[2] Augusta Univ, Med Coll Georgia, Dept Med, Div Cardiol, Augusta, GA 30912 USA
[3] Augusta Univ, Med Coll Georgia, Dept Biochem & Mol Biol, Augusta, GA 30912 USA
关键词
ufmylation; UFM1; UFBP1; ER stress response; heart failure; intestine; UFM1; UBIQUITIN;
D O I
10.3390/cells12151923
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Protein modification by ubiquitin fold modifier 1 (UFM1), termed ufmylation, regulates various physiological and pathological processes. Among emerging UFM1 targets, UFM1 binding protein 1 (UFBP1) is the first identified ufmylation substrate. Recent clinical and animal studies have demonstrated the pivotal roles of UFBP1 in development, hematopoiesis, intestinal homeostasis, chondrogenesis, and neuronal development, which has been linked to its function in maintaining endoplasmic reticulum (ER) homeostasis. However, the importance of UFBP1 ufmylation in these cellular and physiological processes has yet to be determined. It has been proposed that ufmylation of lysine 268 (267 in humans) in UFBP1 plays a critical role in mediating the effects of the ufmylation pathway. In this study, we for the first time probe the pathophysiological significance of UFBP1 ufmylation in vivo by creating and characterizing a mouse UFBP1 knockin (KI) model in which the lysine 268 of UFBP1, the amino acid accepting UFM1, was mutated to arginine. Our results showed that the K268R mutation reduced the total ufmylated proteins without altering the expression levels of individual ufmylation enzymes in mouse embryonic fibroblasts. The K268R mutation did not alter ER stress-stimuli-induced ER stress signaling or cell death in mouse embryonic fibroblasts. The homozygous KI mice were viable and morphologically indistinguishable from their littermate wild-type controls up to one year of age. Serial echocardiography revealed no cardiac functional impairment of the homozygous KI mice. Furthermore, the homozygous KI mice exhibited the same susceptibility to dextran sulfate sodium (DSS) -induced colitis as wild-type mice. Taken together, these results suggest that UFBP1 K268 is dispensable for ER stress response, embryonic development, cardiac homeostasis under physiological conditions, and intestinal homeostasis under pathological conditions. Our studies call for future investigations to understand the biological function of UFBP1 ufmylation and offer a new mouse model to determine the roles of UFBP1 ufmylation in different tissues under stress conditions.
引用
收藏
页数:13
相关论文
共 30 条
[1]   Indispensable role of the Ubiquitin-fold modifier 1-specific E3 ligase in maintaining intestinal homeostasis and controlling gut inflammation [J].
Cai, Yafei ;
Zhu, Guangxun ;
Liu, Siyang ;
Pan, Zezheng ;
Quintero, Michaela ;
Poole, Candace J. ;
Lu, Chunwan ;
Zhu, Huabin ;
Islam, Bianca ;
van Riggelen, Jan ;
Browning, Darren ;
Liu, Kebin ;
Blumberg, Richard ;
Singh, Nagendra ;
Li, Honglin .
CELL DISCOVERY, 2019, 5 (1)
[2]   UFBP1, a Key Component of the Ufm1 Conjugation System, Is Essential for Ufmylation-Mediated Regulation of Erythroid Development [J].
Cai, Yafei ;
Pi, Wenhu ;
Sivaprakasam, Satish ;
Zhu, Xiaobin ;
Zhang, Mingsheng ;
Chen, Jijun ;
Makala, Levi ;
Lu, Chunwan ;
Wu, Jianchu ;
Teng, Yong ;
Pace, Betty ;
Tuan, Dorothy ;
Singh, Nagendra ;
Li, Honglin .
PLOS GENETICS, 2015, 11 (11)
[3]   Loss of DDRGK1 modulates SOX9 ubiquitination in spondyloepimetaphyseal dysplasia [J].
Egunsola, Adetutu T. ;
Bae, Yangjin ;
Jiang, Ming-Ming ;
Liu, David S. ;
Chen-Evenson, Yuqing ;
Bertin, Terry ;
Chen, Shan ;
Lu, James T. ;
Nevarez, Lisette ;
Magal, Nurit ;
Raas-Rothschild, Annick ;
Swindell, Eric C. ;
Cohn, Daniel H. ;
Gibbs, Richard A. ;
Campeau, Philippe M. ;
Shohat, Mordechai ;
Lee, Brendan H. .
JOURNAL OF CLINICAL INVESTIGATION, 2017, 127 (04) :1475-1484
[4]   The UFMylation System in Proteostasis and Beyond [J].
Gerakis, Yannis ;
Quintero, Michaela ;
Li, Honglin ;
Hetz, Claudio .
TRENDS IN CELL BIOLOGY, 2019, 29 (12) :974-986
[5]   Structure of Ubiquitin-fold Modifier 1-specific Protease UfSP2 [J].
Ha, Byung Hak ;
Jeon, Young Joo ;
Shin, Sang Chul ;
Tatsumi, Kanako ;
Komatsu, Masaaki ;
Tanaka, Keiji ;
Watson, Christopher M. ;
Wallis, Gillian ;
Chung, Chin Ha ;
Kim, Eunice EunKyeong .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2011, 286 (12) :10248-10257
[6]   Two novel ubiquitin-fold modifier 1 (Ufm1)-specific proteases, UfSP1 and UfSP2 [J].
Kang, Sung Hwan ;
Kim, Gi Ryang ;
Seong, Minu ;
Baek, Sung Hee ;
Seol, Jae Hong ;
Bang, Ok Sun ;
Ovaa, Huib ;
Tatsumi, Kanako ;
Komatsu, Masaaki ;
Tanaka, Keiji ;
Chung, Chin Ha .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2007, 282 (08) :5256-5262
[7]   Overexpression of a novel regulator of p120 catenin, NLBP, promotes lung adenocarcinoma proliferation [J].
Kim, Chang Hee ;
Nam, Hae-Seong ;
Lee, Eun Hee ;
Han, Seung Hun ;
Cho, Hyun Jung ;
Chung, Hee Jin ;
Lee, Nam Soo ;
Choi, Suk Jin ;
Kim, Hojoong ;
Ryu, Jeong Seon ;
Kwon, Junhye ;
Kim, Hongtae .
CELL CYCLE, 2013, 12 (15) :2443-2453
[8]   A novel protein-conjugating system for Ufm1, a ubiquitin-fold modifier [J].
Komatsu, M ;
Chiba, T ;
Tatsumi, K ;
Iemura, S ;
Tanida, I ;
Okazaki, N ;
Ueno, T ;
Kominami, E ;
Natsume, T ;
Tanaka, K .
EMBO JOURNAL, 2004, 23 (09) :1977-1986
[9]   A genome-wide CRISPR screen identifies UFMylation and TRAMP-like complexes as host factors required for hepatitis A virus infection [J].
Kulsuptrakul, Jessie ;
Wang, Ruofan ;
Meyers, Nathan L. ;
Ott, Melanie ;
Puschnik, Andreas S. .
CELL REPORTS, 2021, 34 (11)
[10]   Ubiquitin Fold Modifier 1 (UFM1) and Its Target UFBP1 Protect Pancreatic Beta Cells from ER Stress-Induced Apoptosis [J].
Lemaire, Katleen ;
Moura, Rodrigo F. ;
Granvik, Mikaela ;
Igoillo-Esteve, Mariana ;
Hohmeier, Hans E. ;
Hendrickx, Nico ;
Newgard, Christopher B. ;
Waelkens, Etienne ;
Cnop, Miriam ;
Schuit, Frans .
PLOS ONE, 2011, 6 (04)