PKG1-modified TSC2 regulates mTORC1 activity to counter adverse cardiac stress

被引:0
|
作者
Mark J. Ranek
Kristen M. Kokkonen-Simon
Anna Chen
Brittany L. Dunkerly-Eyring
Miguel Pinilla Vera
Christian U. Oeing
Chirag H. Patel
Taishi Nakamura
Guangshuo Zhu
Djahida Bedja
Masayuki Sasaki
Ronald J. Holewinski
Jennifer E. Van Eyk
Jonathan D. Powell
Dong Ik Lee
David A. Kass
机构
[1] The Johns Hopkins Medical Institutions,Division of Cardiology, Department of Medicine
[2] Johns Hopkins University,Department of Pharmacology and Molecular Sciences
[3] Johns Hopkins University School of Medicine,Bloomberg~Kimmel Institute for Cancer Immunotherapy, Sidney
[4] Cedars Sinai Medical Center,Kimmel Comprehensive Cancer Research Center, Department of Oncology
来源
Nature | 2019年 / 566卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
The mechanistic target of rapamycin complex-1 (mTORC1) coordinates regulation of growth, metabolism, protein synthesis and autophagy1. Its hyperactivation contributes to disease in numerous organs, including the heart1,2, although broad inhibition of mTORC1 risks interference with its homeostatic roles. Tuberin (TSC2) is a GTPase-activating protein and prominent intrinsic regulator of mTORC1 that acts through modulation of RHEB (Ras homologue enriched in brain). TSC2 constitutively inhibits mTORC1; however, this activity is modified by phosphorylation from multiple signalling kinases that in turn inhibits (AMPK and GSK-3β) or stimulates (AKT, ERK and RSK-1) mTORC1 activity3–9. Each kinase requires engagement of multiple serines, impeding analysis of their role in vivo. Here we show that phosphorylation or gain- or loss-of-function mutations at either of two adjacent serine residues in TSC2 (S1365 and S1366 in mice; S1364 and S1365 in humans) can bidirectionally control mTORC1 activity stimulated by growth factors or haemodynamic stress, and consequently modulate cell growth and autophagy. However, basal mTORC1 activity remains unchanged. In the heart, or in isolated cardiomyocytes or fibroblasts, protein kinase G1 (PKG1) phosphorylates these TSC2 sites. PKG1 is a primary effector of nitric oxide and natriuretic peptide signalling, and protects against heart disease10–13. Suppression of hypertrophy and stimulation of autophagy in cardiomyocytes by PKG1 requires TSC2 phosphorylation. Homozygous knock-in mice that express a phosphorylation-silencing mutation in TSC2 (TSC2(S1365A)) develop worse heart disease and have higher mortality after sustained pressure overload of the heart, owing to mTORC1 hyperactivity that cannot be rescued by PKG1 stimulation. However, cardiac disease is reduced and survival of heterozygote Tsc2S1365A knock-in mice subjected to the same stress is improved by PKG1 activation or expression of a phosphorylation-mimicking mutation (TSC2(S1365E)). Resting mTORC1 activity is not altered in either knock-in model. Therefore, TSC2 phosphorylation is both required and sufficient for PKG1-mediated cardiac protection against pressure overload. The serine residues identified here provide a genetic tool for bidirectional regulation of the amplitude of stress-stimulated mTORC1 activity.
引用
收藏
页码:264 / 269
页数:5
相关论文
共 50 条
  • [21] TSC2/mTORC1 signaling controls Paneth and goblet cell differentiation in the intestinal epithelium
    Zhou, Y.
    Rychahou, P.
    Wang, Q.
    Weiss, H. L.
    Evers, B. M.
    CELL DEATH & DISEASE, 2015, 6 : e1631 - e1631
  • [22] Natural Product-Derived Antitumor Compound Phenethyl Isothiocyanate Inhibits mTORC1 Activity via TSC2
    Cavell, Breeze E.
    Alwi, Sharifah S. Syed
    Donleyy, Alison M.
    Proud, Christopher G.
    Packham, Graham
    JOURNAL OF NATURAL PRODUCTS, 2012, 75 (06): : 1051 - 1057
  • [23] Phosphorylation of TSC2 by PKC-δ reveals a novel signaling pathway that couples protein synthesis to mTORC1 activity
    Zhan, Jun
    Chitta, Raghu K.
    Harwood, Frank C.
    Grosveld, Gerard C.
    MOLECULAR AND CELLULAR BIOCHEMISTRY, 2019, 456 (1-2) : 123 - 134
  • [24] Phosphorylation of TSC2 by PKC-δ reveals a novel signaling pathway that couples protein synthesis to mTORC1 activity
    Jun Zhan
    Raghu K. Chitta
    Frank C. Harwood
    Gerard C. Grosveld
    Molecular and Cellular Biochemistry, 2019, 456 : 123 - 134
  • [25] Redox Regulates Mammalian Target of Rapamycin Complex 1 (mTORC1) Activity by Modulating the TSC1/TSC2-Rheb GTPase Pathway
    Yoshida, Sei
    Hong, Sungki
    Suzuki, Tsukasa
    Nada, Shigeyuki
    Mannan, Aristotle M.
    Wang, Junying
    Okada, Masato
    Guan, Kun-Liang
    Inoki, Ken
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2011, 286 (37) : 32651 - 32660
  • [26] TSC2, RAPTOR and glucokinase are key regulators of mTORC1 signalling and pancreatic beta cell survival under energetic stress
    Marques, P.
    Bartolome, A.
    Kamitz, A.
    Gonzalez, C.
    Burillo, J.
    Martinez, H.
    Fernandez-Rhodes, M.
    Jimenez, B.
    Jordan, M.
    Garcia, G.
    Fernandez, S.
    Guillen, C.
    Benito, M.
    DIABETOLOGIA, 2019, 62 : S207 - S208
  • [27] Defining the In Vivo Role of mTORC1 in Thyrocytes by Studying the TSC2 Conditional Knockout Mouse Model
    Rossetti, Camila Ludke
    Alves, Bruna Lourenconi
    Pecanha, Flavia Leticia Martins
    Franco, Aime T.
    Nose, Vania
    Carneiro, Everardo Magalhaes
    Lew, John
    Bernal-Mizrachi, Ernesto
    Werneck-de-Castro, Joao Pedro
    THYROID, 2024, 34 (08) : 1047 - 1057
  • [28] Ablation of TSC2 Enhances Insulin Secretion by Increasing the Number of Mitochondria through Activation of mTORC1
    Koyanagi, Maki
    Asahara, Shun-ichiro
    Matsuda, Tomokazu
    Hashimoto, Naoko
    Shigeyama, Yutaka
    Shibutani, Yuki
    Kanno, Ayumi
    Fuchita, Megumi
    Mikami, Tomoko
    Hosooka, Tetsutya
    Inoue, Hiroshi
    Matsumoto, Michihiro
    Koike, Masato
    Uchiyama, Yasuo
    Noda, Tetsuo
    Seino, Susumu
    Kasuga, Masato
    Kido, Yoshiaki
    PLOS ONE, 2011, 6 (08):
  • [29] p53 Deletion or Hotspot Mutations Enhance mTORC1 Activity by Altering Lysosomal Dynamics of TSC2 and Rheb
    Agarwal, Stuti
    Bell, Catherine M.
    Taylor, Shirley M.
    Moran, Richard G.
    MOLECULAR CANCER RESEARCH, 2016, 14 (01) : 66 - 77
  • [30] MTORC1-Regulated Metabolism Controlled by TSC2 Limits Cardiac Reperfusion Injury
    Oeing, Christian U.
    Jun, Seungho
    Mishra, Sumita
    Dunkerly-Eyring, Brittany L.
    Chen, Anna
    Grajeda, Maria, I
    Tahir, Usman A.
    Gerszten, Robert E.
    Paolocci, Nazareno
    Ranek, Mark J.
    Kass, David A.
    CIRCULATION RESEARCH, 2021, 128 (05) : 639 - 651