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p21-senescent cells drive pancreatic islet dysfunction through targetable paracrine signaling in type 2 diabetes
Kanako Iwasaki, Priscila Carapeto, Cristian Abarca, Francesko Hela, Stephanie Sanjines, Sebastian Pena, Sandra Le, Hui Pan, Maya Jackson, Christopher Cahill, Ayush Midha, Juliana Alcoforado Diniz, Dylan Baker, Sergii Domanskyi, Sara Espinoza, Alejandro Peña, Francisco G. Cigarroa, Jillian L. Woodworth, Jeffrey H. Chuang, Vesna D. Garovic, James L. Kirkland, Tamara Tchkonia, Nicolas Musi, George A. Kuchel, Paul Robson, Cristina Aguayo-Mazzucato
Kanako Iwasaki, Priscila Carapeto, Cristian Abarca, Francesko Hela, Stephanie Sanjines, Sebastian Pena, Sandra Le, Hui Pan, Maya Jackson, Christopher Cahill, Ayush Midha, Juliana Alcoforado Diniz, Dylan Baker, Sergii Domanskyi, Sara Espinoza, Alejandro Peña, Francisco G. Cigarroa, Jillian L. Woodworth, Jeffrey H. Chuang, Vesna D. Garovic, James L. Kirkland, Tamara Tchkonia, Nicolas Musi, George A. Kuchel, Paul Robson, Cristina Aguayo-Mazzucato
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Research Article Aging Endocrinology Metabolism

p21-senescent cells drive pancreatic islet dysfunction through targetable paracrine signaling in type 2 diabetes

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Abstract

Cellular senescence is an irreversible stress response, which leads to loss of cellular function and remodeling of the cellular secretory profile. In humans, pancreatic β cells undergo cellular senescence during the progression to type 2 diabetes (T2D). However, the mechanism linking β cell senescence to islet dysfunction remains unknown, and thus the therapeutic potential of targeting senescent cells in T2D is not established. Herein, we identified a subpopulation of senescent β cells expressing p21, which emerged early in the progression of T2D in humans and mice. Spatial transcriptomics and proteomics analyses confirmed senescence and loss of cellular identity in this subpopulation in humans. Functional analysis revealed lack of glucose responsiveness, high basal insulin secretion, and transcription of senescence-associated secretory phenotype (SASP) factors. SASP factors from p21+ β cells induced secondary senescence in neighboring cells, characterized by dysfunction and loss of identity. JAK inhibitors counteracted the induction of secondary senescence and restored β cell function in islets from humans with T2D and in mice fed a high-fat diet. These findings reveal the critical role of p21+ β cells in T2D pathogenesis and the therapeutic potential of targeting this pathophysiological process.

Authors

Kanako Iwasaki, Priscila Carapeto, Cristian Abarca, Francesko Hela, Stephanie Sanjines, Sebastian Pena, Sandra Le, Hui Pan, Maya Jackson, Christopher Cahill, Ayush Midha, Juliana Alcoforado Diniz, Dylan Baker, Sergii Domanskyi, Sara Espinoza, Alejandro Peña, Francisco G. Cigarroa, Jillian L. Woodworth, Jeffrey H. Chuang, Vesna D. Garovic, James L. Kirkland, Tamara Tchkonia, Nicolas Musi, George A. Kuchel, Paul Robson, Cristina Aguayo-Mazzucato

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Figure 5

Secondary senescence induced by Cdkn1a+ SASP factors is counteracted by JAK1/2i in mouse islets in vitro and in vivo.

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Secondary senescence induced by Cdkn1a+ SASP factors is counteracted by ...
(A) Pathway analysis of SASP-regulating pathways in RNA-Seq data from mouse senescent β cells (6) reveals upregulation of the JAK/STAT pathway. (B) Experimental design in vitro: Treatment of islets from p21-tdTom mice with Cdkn1a SASP factors (LSAMP+DUSP3+GDF15+IDE) in combination with JAK1/2i. In vivo: male C57Bl/6N mice were fed a high-fat diet (HFD) for 6 weeks and treated for 4 weeks with JAK1/2i. n = 9 control, n = 11 HFD group, n = 13 HFD + JAK1/2i. (C) Flow cytometry analysis of dispersed islets treated with Cdkn1a SASP factors with or without JAK1/2i. (D) Transcriptional analysis of islets treated with Cdkn1a SASP factors with or without JAK1/2i. (E) Functional analysis of islets treated with Cdkn1a SASP factors with or without JAK1/2i. n = 4 independent experiments. (C–E) Mean ± SEM; expression levels analyzed by 2-way t tests with respect to control; *P < 0.01, **P < 0.001, and ****P < 0.00001. (F) Heatmap showing expression of key senescent genes in islets isolated from different treated groups. (G) Percentage of p21 (red) positive cells in INSULIN (green) positive cells determined by semiquantitative IHC in 3 groups: control, HFD, and HFD+JAK1/2i. Four 16–24-week-old female p21-tdTom mice were used in each group, and 933–1,245 islets were counted per group. *P < 0.05, ***P < 0.0001 by ordinary 1-way ANOVA followed by Tukey’s multiple comparisons test. (H) Representative images of islets immunostained for p21 (red) positive cells in INSULIN (green) in different treatment groups. Scale bar: 50 mm. (I) z score expression of senescence and SASP genes. (J) z score expression of β cell hallmark and functional genes. (K) GSIS by sampling plasma at minutes 0 and 15 during the GTT (i.p.). Mean ± SEM; *P < 0.01, **P < 0.001 by 2-way paired t test. (L) Fed plasma insulin in mice. Mean ± SEM; *P < 0.01 by 2-way unpaired t test.

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