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Updated: Jun 13, 2026

Magnetic Adjustment of Afterload in Engineered Heart Tissues
Published on: May 5, 2020
Site-specific microtubule-associated protein 4 dephosphorylation causes microtubule network densification in pressure
Panneerselvam Chinnakkannu1, Venkatesababa Samanna, Guangmao Cheng
1Cardiology Division, Gazes Cardiac Research Institute, Medical University of South Carolina, Charleston, South Carolina 29403, USA.
Insights
Dephosphorylation of microtubule-associated protein 4 (MAP4) at Ser-924 in cardiac hypertrophy stabilizes microtubules, impairing heart cell function. This specific dephosphorylation site is key to the cytoskeletal changes observed in this condition.
Area of Science:
- Cardiovascular Biology
- Cell Biology
- Biochemistry
Background:
- Pressure overload induces cardiac hypertrophy, characterized by a dense, stabilized microtubule network.
- This cytoskeletal abnormality disrupts cardiocyte contraction and transport, linked to increased tubulin and microtubule-associated protein 4 (MAP4).
- MAP4's affinity for microtubules, a key factor, is regulated by site-specific dephosphorylation.
Purpose of the Study:
- To characterize MAP4 dephosphorylation in hypertrophied myocardium.
- To assess the functional significance of identified MAP4 dephosphorylation sites in normal cardiocytes.
Main Methods:
- Isolated MAP4 from normal and pressure overload-hypertrophied feline myocardium.
- Utilized mass spectrometry to identify site-specific MAP4 dephosphorylation.
- Employed site-directed mutagenesis to create non-phosphorylatable MAP4 mutants (Ser to Ala).
- Assessed microtubule network density, stability, and MAP4 decoration in normal cardiocytes expressing wild-type and mutant MAP4 via adenoviruses.
Main Results:
- Identified significant MAP4 dephosphorylation at Ser-472, Ser-924, and Ser-1056 in pressure overload-hypertrophied myocardium.
- The Ser-924 --> Ala MAP4 mutant mimicked the dense microtubule phenotype of pressure overload hypertrophy.
- Dephosphorylation at Ser-924 in MAP4 appears central to the observed cytoskeletal abnormalities.
Conclusions:
- MAP4 dephosphorylation, particularly at Ser-924, is a critical event in pressure overload-induced cardiac hypertrophy.
- Targeting MAP4 dephosphorylation may offer therapeutic strategies for cardiac hypertrophy-related cytoskeletal dysfunction.
Abstract:
In severe pressure overload-induced cardiac hypertrophy, a dense, stabilized microtubule network forms that interferes with cardiocyte contraction and microtubule-based transport. This is associated with persistent transcriptional up-regulation of cardiac alpha- and beta-tubulin and microtubule-stabilizing microtubule-associated protein 4 (MAP4). There is also extensive microtubule decoration by MAP4, suggesting greater MAP4 affinity for microtubules. Because the major determinant of this affinity is site-specific MAP4 dephosphorylation, we characterized this in hypertrophied myocardium and then assessed the functional significance of each dephosphorylation site found by mimicking it in normal cardiocytes. We first isolated MAP4 from normal and pressure overload-hypertrophied feline myocardium; volume-overloaded myocardium, which has an equal degree and duration of hypertrophy but normal functional and cytoskeletal properties, served as a control for any nonspecific growth-related effects. After cloning cDNA-encoding feline MAP4 and obtaining its deduced amino acid sequence, we characterized by mass spectrometry any site-specific MAP4 dephosphorylation. Solely in pressure overload-hypertrophied myocardium, we identified striking MAP4 dephosphorylation at Ser-472 in the MAP4 N-terminal projection domain and at Ser-924 and Ser-1056 in the assembly-promoting region of the C-terminal microtubule-binding domain. Site-directed mutagenesis of MAP4 cDNA was then used to switch each serine to non-phosphorylatable alanine. Wild-type and mutated cDNAs were used to construct adenoviruses; microtubule network density, stability, and MAP4 decoration were assessed in normal cardiocytes following an equivalent level of MAP4 expression. The Ser-924 --> Ala MAP4 mutant produced a microtubule phenotype indistinguishable from that seen in pressure overload hypertrophy, such that Ser-924 MAP4 dephosphorylation during pressure overload hypertrophy may be central to this cytoskeletal abnormality.
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