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Pharmacologic and genetic approaches define human pancreatic β cell mitogenic targets of DYRK1A inhibitors
Courtney Ackeifi, Ethan Swartz, Kunal Kumar, Hongtao Liu, Suebsuwong Chalada, Esra Karakose, Donald K. Scott, Adolfo Garcia-Ocaña, Roberto Sanchez, Robert J. DeVita, Andrew F. Stewart, Peng Wang
Courtney Ackeifi, Ethan Swartz, Kunal Kumar, Hongtao Liu, Suebsuwong Chalada, Esra Karakose, Donald K. Scott, Adolfo Garcia-Ocaña, Roberto Sanchez, Robert J. DeVita, Andrew F. Stewart, Peng Wang
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Research Article Endocrinology Metabolism

Pharmacologic and genetic approaches define human pancreatic β cell mitogenic targets of DYRK1A inhibitors

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Abstract

Small molecule inhibitors of dual specificity, tyrosine phosphorylation-regulated kinase 1A (DYRK1A), including harmine and others, are able to drive human β cell regeneration. While DYRK1A is certainly a target of this class, whether it is the only or the most important target is uncertain. Here, we employ a combined pharmacologic and genetic approach to refine the potential mitogenic targets of the DYRK1A inhibitor family in human islets. A combination of human β cell RNA sequencing, DYRK1A inhibitor kinome screens, pharmacologic inhibitors, and targeted silencing of candidate genes confirms that DYRK1A is a central target. Surprisingly, however, DYRK1B also proves to be an important target: silencing DYRK1A results in an increase in DYRK1B. Simultaneous silencing of both DYRK1A and DYRK1B yields greater β cell proliferation than silencing either individually. Importantly, other potential kinases, such as the CLK and the GSK3 families, are excluded as important harmine targets. Finally, we describe adenoviruses that are able to silence up to 7 targets simultaneously. Collectively, we report that inhibition of both DYRK1A and DYRK1B is required for induction of maximal rates of human β cell proliferation, and we provide clarity for future efforts in structure-based drug design for human β cell regenerative drugs.

Authors

Courtney Ackeifi, Ethan Swartz, Kunal Kumar, Hongtao Liu, Suebsuwong Chalada, Esra Karakose, Donald K. Scott, Adolfo Garcia-Ocaña, Roberto Sanchez, Robert J. DeVita, Andrew F. Stewart, Peng Wang

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Figure 2

Silencing DYRK1A and DYRK1B in combination induces and enhances human β cell proliferation.

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Silencing DYRK1A and DYRK1B in combination induces and enhances human β ...
(A) qPCR studies demonstrating that adenoviruses intended to silence the DYRK family are effective in human islets. Ad.shCon refers to a control adenovirus–silencing β-galactosidase. Data are shown as the mean ± SEM of 4 human islet donors. **P < 0.01; ***P < 0.001 vs. the Ad.shCon control by paired 2-tailed t test. (B) Immunoblots for the DYRK1A, DYRK1B, and DYRK2 in human islets transduced with the viruses shown. DYRK3 and DYRK4 were not examined because antisera are not available. Each blot represents immunoblots from 3 different donors. The key points are that silencing DYRK1A, DYRK1B, and DYRK2 in human islets is effective, and that silencing DYRK1A leads to an apparent compensatory increase in DYRK1B. (C) qPCR for DYRK1B in response to Ad.shDYRK1A. Data are shown as mean ± SEM of 5 human islet donors. ***P < 0.001 vs. the Ad.shCon control by paired 2-tailed t test. (D) The effects on proliferation (Ki67-insulin coimmunolabeling) of silencing DYRK1A (D1A), DYRK1B (D1B), DYRK2 (D2), DYRK3 (D3), or DYRK4 (D4) individually in human islets. Data are shown as mean ± SEM of 4 human islet donors. The inset shows a representative example of Ki67 and insulin coimmunolabeling of dispersed human β cells in which DYRK1A was silenced. ***P < 0.001 vs. Ad.shCon control. #P < 0.01; ##P < 0.001 vs. Ad.shD1A, all by 1-way ANOVA with Bonferroni’s multiple-comparisons test. Original magnification, 40×. (E) Illustration of shRNAs directed against each of the 5 members of the DYRK family. Other viruses silencing only DYRK1A and DYRK1B, and other combinations shown in the next panels, were also generated. (F) qPCR studies demonstrating that a single virus containing shRNA cassettes directed against each member of the DYRK family effectively silences its cognate RNA. Data are shown as mean ± SEM of 4 human islet donors. **P < 0.01; ***P < 0.001 vs. the Ad.shCon control by paired 2-tailed t test. (G) Effect on human β cell proliferation of a variety of combinations of DYRK shRNA adenoviruses in human β cells. Data are shown as mean ± SEM of 16 human islet donors. *P < 0.05; **P < 0.01 vs. the Ad.shCon control. ##P < 0.001 vs. Ad.shD1A, all by 1-way ANOVA with Bonferroni’s multiple-comparisons test. Specific human islet preparations used are detailed in Supplemental Table 2.

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