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Phosphoproteomics identification of ERK-dependent activation of Rps6kb1 in cardiac hypertrophy
Chao Li, Pengfei Zhang, Kai Zhang, Jane A. Cook, Weidan Song, Megan Virostek, Lily A. Slotabec, Nadiyeh Rouhi, Mohammed Hazari, Michael I. Adenawoola, Xiaofei Liu, Hao Zhang, Guangyu Zhang, Erica L. Niewold, Qinfeng Li, Yong Fang, Waleed M. Elhelaly, Xue-Nan Sun, Xuejiang Guo, Andrew Lemoff, Yingfeng Deng, Thomas G. Gillette, Ji Li, Philipp E. Scherer, Zhao V. Wang
Chao Li, Pengfei Zhang, Kai Zhang, Jane A. Cook, Weidan Song, Megan Virostek, Lily A. Slotabec, Nadiyeh Rouhi, Mohammed Hazari, Michael I. Adenawoola, Xiaofei Liu, Hao Zhang, Guangyu Zhang, Erica L. Niewold, Qinfeng Li, Yong Fang, Waleed M. Elhelaly, Xue-Nan Sun, Xuejiang Guo, Andrew Lemoff, Yingfeng Deng, Thomas G. Gillette, Ji Li, Philipp E. Scherer, Zhao V. Wang
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Research Article Cardiology Cell biology

Phosphoproteomics identification of ERK-dependent activation of Rps6kb1 in cardiac hypertrophy

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Abstract

Cardiomyocyte growth is tightly controlled by multiple signaling pathways. Identification of master kinases in this process is essential in exploring potential targets for the treatment of pathological cardiac hypertrophy and heart failure. Here we identified the mTOR-independent activation of ribosomal protein S6 kinase b1 (Rps6kb1) during cardiomyocyte growth. By utilizing phosphoproteomics in primary neonatal rat ventricular myocytes, we revealed Rps6kb1 as one of most activated kinases under growth stimulation. We further demonstrated the role of Rps6kb1 phosphorylation in pathological cardiac hypertrophy and heart failure. We showed that the phosphorylation of multiple sites in Rps6kb1, including T367 in the kinase domain and S418/T421/S424 in the C-terminal domain, is not directly regulated by the activity of mTOR but coupled with the activation of the MEK1/ERK axis. In mice, cardiomyocyte-specific deletion of Rps6kb1 significantly inhibited both constitutively active ERK– and pressure overload–induced cardiac hypertrophy. In contrast, cardiomyocyte-specific overexpression of wild-type Rps6kb1, rather than the phosphorylation-defective mutant, elevated cardiac hypertrophy and augmented pressure overload–induced heart failure. In conclusion, our findings reveal that the MEK/ERK axis primes Rps6kb1 activation through phosphorylation of 2 separate domains of Rps6kb1, which may play an essential role in cardiac hypertrophy and heart failure under hemodynamic stress.

Authors

Chao Li, Pengfei Zhang, Kai Zhang, Jane A. Cook, Weidan Song, Megan Virostek, Lily A. Slotabec, Nadiyeh Rouhi, Mohammed Hazari, Michael I. Adenawoola, Xiaofei Liu, Hao Zhang, Guangyu Zhang, Erica L. Niewold, Qinfeng Li, Yong Fang, Waleed M. Elhelaly, Xue-Nan Sun, Xuejiang Guo, Andrew Lemoff, Yingfeng Deng, Thomas G. Gillette, Ji Li, Philipp E. Scherer, Zhao V. Wang

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Figure 6

ERK directly phosphorylates Rps6kb1 at T367 and S418/T421/S424.

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ERK directly phosphorylates Rps6kb1 at T367 and S418/T421/S424.
(A) Over...
(A) Overexpression of activated ERK2 increased the phosphorylation of Rps6kb1. HEK293A cells were transfected with plasmids for myc-ERK2-MEK1 and HA-Rps6kb1 and treated with rapamycin (Rapa). (B) Schematic diagram for the experiment to identify the sites of Rps6kb1 phosphorylated by ERK. (C) Four phosphorylation sites of Rps6kb1 by ERK were identified in B. (D) Validation of the newly generated polyclonal antibodies recognizing phosphorylated Rps6kb1 (T367). A short peptide around the T367 residue with or without phosphorylation was synthesized. Dot plot assay showed that the new antibodies had stronger reactivity for the phosphorylated peptides. (E) Coomassie blue staining for purified recombinant GST-ERK2 and His-Rps6kb1 proteins. (F) Kinase assay showed ERK2 phosphorylated Rps6kb1 at the T367 and S418/T421/S424 sites. Purified His-Rps6kb1 was incubated with GST-ERK2. Phosphorylation of Rps6kb1 was examined by antibodies recognizing the phosphorylated T367 and T421/S424 residues, respectively. (G) GST pulldown assay showed the direct interaction between recombinant ERK2 and Rps6kb1.

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