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Oligopeptide Competition Assay for Phosphorylation Site Determination
Published on: May 18, 2017
Tyrosine phosphorylation modifies protein kinase C delta-dependent phosphorylation of cardiac troponin I
Marius P Sumandea1, Vitalyi O Rybin, Aaron C Hinken
1Department of Internal Medicine, Cardiovascular Research Center, University of Kentucky, Lexington, Kentucky 40536, USA.
Abstract:
Our study identifies tyrosine phosphorylation as a novel protein kinase Cdelta (PKCdelta) activation mechanism that modifies PKCdelta-dependent phosphorylation of cardiac troponin I (cTnI), a myofilament regulatory protein. PKCdelta phosphorylates cTnI at Ser23/Ser24 when activated by lipid cofactors; Src phosphorylates PKCdelta at Tyr311 and Tyr332 leading to enhanced PKCdelta autophosphorylation at Thr505 (its activation loop) and PKCdelta-dependent cTnI phosphorylation at both Ser23/Ser24 and Thr144. The Src-dependent acquisition of cTnI-Thr144 kinase activity is abrogated by Y311F or T505A substitutions. Treatment of detergent-extracted single cardiomyocytes with lipid-activated PKCdelta induces depressed tension at submaximum but not maximum [Ca2+] as expected for cTnI-Ser23/Ser24 phosphorylation. Treatment of myocytes with Src-activated PKCdelta leads to depressed maximum tension and cross-bridge kinetics, attributable to a dominant effect of cTnI-Thr144 phosphorylation. Our data implicate PKCdelta-Tyr311/Thr505 phosphorylation as dynamically regulated modifications that alter PKCdelta enzymology and allow for stimulus-specific control of cardiac mechanics during growth factor stimulation and oxidative stress.
Insights
Tyrosine phosphorylation is a novel mechanism activating protein kinase Cdelta (PKCdelta), altering cardiac troponin I (cTnI) phosphorylation. This regulates cardiac muscle mechanics during stress.
Area of Science:
- Biochemistry
- Molecular Biology
- Cardiovascular Physiology
Background:
- Protein kinase Cdelta (PKCdelta) plays a role in cardiac function.
- Cardiac troponin I (cTnI) is a key regulator of myofilament contraction.
- Understanding PKCdelta regulation is crucial for cardiac health.
Purpose of the Study:
- To identify novel activation mechanisms for PKCdelta.
- To investigate the impact of PKCdelta phosphorylation on cTnI.
- To elucidate the role of PKCdelta in regulating cardiac mechanics.
Main Methods:
- Investigated tyrosine phosphorylation of PKCdelta.
- Analyzed PKCdelta-dependent phosphorylation of cTnI at specific sites (Ser23/Ser24, Thr144).
- Utilized single cardiomyocyte contractility assays.
Main Results:
- Identified tyrosine phosphorylation as a novel PKCdelta activation mechanism.
- Src-mediated phosphorylation of PKCdelta at Tyr311/Tyr332 enhances its activity.
- PKCdelta phosphorylates cTnI at Ser23/Ser24 and Thr144, affecting cardiac tension and kinetics.
Conclusions:
- PKCdelta-Tyr311/Thr505 phosphorylation dynamically regulates PKCdelta activity.
- This regulation allows for stimulus-specific control of cardiac mechanics.
- Implicates PKCdelta in cardiac responses to growth factors and oxidative stress.
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