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1.
Cell Metab ; 35(10): 1814-1829.e6, 2023 10 03.
Article in English | MEDLINE | ID: mdl-37699398

ABSTRACT

Selectively ablating damaged cells is an evolving therapeutic approach for age-related disease. Current methods for genome-wide screens to identify genes whose deletion might promote the death of damaged or senescent cells are generally underpowered because of the short timescales of cell death as well as the difficulty of scaling non-dividing cells. Here, we establish "Death-seq," a positive-selection CRISPR screen optimized to identify enhancers and mechanisms of cell death. Our screens identified synergistic enhancers of cell death induced by the known senolytic ABT-263. The screen also identified inducers of cell death and senescent cell clearance in models of age-related diseases by a related compound, ABT-199, which alone is not senolytic but exhibits less toxicity than ABT-263. Death-seq enables the systematic screening of cell death pathways to uncover molecular mechanisms of regulated cell death subroutines and identifies drug targets for the treatment of diverse pathological states such as senescence, cancer, and fibrosis.


Subject(s)
Cellular Senescence , Senotherapeutics , Cellular Senescence/genetics , Cell Death , Aniline Compounds
2.
Cell Metab ; 34(6): 902-918.e6, 2022 06 07.
Article in English | MEDLINE | ID: mdl-35584694

ABSTRACT

Short-term fasting is beneficial for the regeneration of multiple tissue types. However, the effects of fasting on muscle regeneration are largely unknown. Here, we report that fasting slows muscle repair both immediately after the conclusion of fasting as well as after multiple days of refeeding. We show that ketosis, either endogenously produced during fasting or a ketogenic diet or exogenously administered, promotes a deep quiescent state in muscle stem cells (MuSCs). Although deep quiescent MuSCs are less poised to activate, slowing muscle regeneration, they have markedly improved survival when facing sources of cellular stress. Furthermore, we show that ketone bodies, specifically ß-hydroxybutyrate, directly promote MuSC deep quiescence via a nonmetabolic mechanism. We show that ß-hydroxybutyrate functions as an HDAC inhibitor within MuSCs, leading to acetylation and activation of an HDAC1 target protein p53. Finally, we demonstrate that p53 activation contributes to the deep quiescence and enhanced resilience observed during fasting.


Subject(s)
Fasting , Tumor Suppressor Protein p53 , 3-Hydroxybutyric Acid , Fasting/physiology , Muscles , Myoblasts
3.
Science ; 366(6466): 734-738, 2019 11 08.
Article in English | MEDLINE | ID: mdl-31699935

ABSTRACT

Adult stem cells are essential for tissue homeostasis. In skeletal muscle, muscle stem cells (MuSCs) reside in a quiescent state, but little is known about the mechanisms that control homeostatic turnover. Here we show that, in mice, the variation in MuSC activation rate among different muscles (for example, limb versus diaphragm muscles) is determined by the levels of the transcription factor Pax3. We further show that Pax3 levels are controlled by alternative polyadenylation of its transcript, which is regulated by the small nucleolar RNA U1. Isoforms of the Pax3 messenger RNA that differ in their 3' untranslated regions are differentially susceptible to regulation by microRNA miR206, which results in varying levels of the Pax3 protein in vivo. These findings highlight a previously unrecognized mechanism of the homeostatic regulation of stem cell fate by multiple RNA species.


Subject(s)
Muscle, Skeletal/physiology , Myoblasts, Skeletal/metabolism , PAX3 Transcription Factor/genetics , Polyadenylation , 3' Untranslated Regions , Animals , Gene Knockdown Techniques , Mice , Mice, Mutant Strains , MicroRNAs/metabolism , RNA, Messenger/metabolism , Ribonucleoprotein, U1 Small Nuclear/genetics , Ribonucleoprotein, U1 Small Nuclear/metabolism
4.
Proc Natl Acad Sci U S A ; 114(43): E8996-E9005, 2017 10 24.
Article in English | MEDLINE | ID: mdl-29073096

ABSTRACT

Tissue regeneration depends on the timely activation of adult stem cells. In skeletal muscle, the adult stem cells maintain a quiescent state and proliferate upon injury. We show that muscle stem cells (MuSCs) use direct translational repression to maintain the quiescent state. High-resolution single-molecule and single-cell analyses demonstrate that quiescent MuSCs express high levels of Myogenic Differentiation 1 (MyoD) transcript in vivo, whereas MyoD protein is absent. RNA pulldowns and costainings show that MyoD mRNA interacts with Staufen1, a potent regulator of mRNA localization, translation, and stability. Staufen1 prevents MyoD translation through its interaction with the MyoD 3'-UTR. MuSCs from Staufen1 heterozygous (Staufen1+/-) mice have increased MyoD protein expression, exit quiescence, and begin proliferating. Conversely, blocking MyoD translation maintains the quiescent phenotype. Collectively, our data show that MuSCs express MyoD mRNA and actively repress its translation to remain quiescent yet primed for activation.


Subject(s)
Gene Expression Regulation/physiology , MyoD Protein/metabolism , RNA-Binding Proteins/metabolism , Stem Cells/physiology , Animals , Cell Differentiation , Mice , Muscle Cells/physiology , MyoD Protein/genetics , RNA, Messenger/genetics , RNA, Messenger/metabolism , RNA-Binding Proteins/genetics
5.
Cell ; 169(1): 132-147.e16, 2017 03 23.
Article in English | MEDLINE | ID: mdl-28340339

ABSTRACT

The accumulation of irreparable cellular damage restricts healthspan after acute stress or natural aging. Senescent cells are thought to impair tissue function, and their genetic clearance can delay features of aging. Identifying how senescent cells avoid apoptosis allows for the prospective design of anti-senescence compounds to address whether homeostasis can also be restored. Here, we identify FOXO4 as a pivot in senescent cell viability. We designed a FOXO4 peptide that perturbs the FOXO4 interaction with p53. In senescent cells, this selectively causes p53 nuclear exclusion and cell-intrinsic apoptosis. Under conditions where it was well tolerated in vivo, this FOXO4 peptide neutralized doxorubicin-induced chemotoxicity. Moreover, it restored fitness, fur density, and renal function in both fast aging XpdTTD/TTD and naturally aged mice. Thus, therapeutic targeting of senescent cells is feasible under conditions where loss of health has already occurred, and in doing so tissue homeostasis can effectively be restored.


Subject(s)
Aging/pathology , Antibiotics, Antineoplastic/adverse effects , Cell-Penetrating Peptides/pharmacology , Doxorubicin/adverse effects , Aging/drug effects , Animals , Antibiotics, Antineoplastic/administration & dosage , Antibiotics, Antineoplastic/pharmacology , Apoptosis , Cell Cycle Proteins , Cell Line , Cell Survival , Cellular Senescence/drug effects , Doxorubicin/administration & dosage , Doxorubicin/pharmacology , Female , Fibroblasts/cytology , Forkhead Transcription Factors/chemistry , Forkhead Transcription Factors/metabolism , Humans , Inclusion Bodies/drug effects , Inclusion Bodies/metabolism , Inclusion Bodies/pathology , Kidney/drug effects , Kidney/physiology , Liver/drug effects , Liver/physiology , Male , Mice , Trichothiodystrophy Syndromes/drug therapy , Tumor Suppressor Protein p53/metabolism
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