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1.
Science ; 384(6695): 563-572, 2024 May 03.
Article in English | MEDLINE | ID: mdl-38696572

ABSTRACT

A molecular clock network is crucial for daily physiology and maintaining organismal health. We examined the interactions and importance of intratissue clock networks in muscle tissue maintenance. In arrhythmic mice showing premature aging, we created a basic clock module involving a central and a peripheral (muscle) clock. Reconstituting the brain-muscle clock network is sufficient to preserve fundamental daily homeostatic functions and prevent premature muscle aging. However, achieving whole muscle physiology requires contributions from other peripheral clocks. Mechanistically, the muscle peripheral clock acts as a gatekeeper, selectively suppressing detrimental signals from the central clock while integrating important muscle homeostatic functions. Our research reveals the interplay between the central and peripheral clocks in daily muscle function and underscores the impact of eating patterns on these interactions.


Subject(s)
Aging, Premature , Aging , Brain , Circadian Rhythm , Muscle, Skeletal , Animals , Male , Mice , Aging/genetics , Aging/physiology , Aging, Premature/genetics , Aging, Premature/prevention & control , Brain/physiology , Circadian Clocks/physiology , Circadian Rhythm/genetics , Circadian Rhythm/physiology , Homeostasis , Muscle, Skeletal/physiology , Mice, Knockout , ARNTL Transcription Factors/genetics
2.
Cell Stem Cell ; 2024 Apr 27.
Article in English | MEDLINE | ID: mdl-38701785

ABSTRACT

In mammals, the circadian clock network drives daily rhythms of tissue-specific homeostasis. To dissect daily inter-tissue communication, we constructed a mouse minimal clock network comprising only two nodes: the peripheral epidermal clock and the central brain clock. By transcriptomic and functional characterization of this isolated connection, we identified a gatekeeping function of the peripheral tissue clock with respect to systemic inputs. The epidermal clock concurrently integrates and subverts brain signals to ensure timely execution of epidermal daily physiology. Timely cell-cycle termination in the epidermal stem cell compartment depends upon incorporation of clock-driven signals originating from the brain. In contrast, the epidermal clock corrects or outcompetes potentially disruptive feeding-related signals to ensure the optimal timing of DNA replication. Together, we present an approach for cataloging the systemic dependencies of daily temporal organization in a tissue and identify an essential gate-keeping function of peripheral circadian clocks that guarantees tissue homeostasis.

3.
Nature ; 629(8010): 154-164, 2024 May.
Article in English | MEDLINE | ID: mdl-38649488

ABSTRACT

Muscle atrophy and functional decline (sarcopenia) are common manifestations of frailty and are critical contributors to morbidity and mortality in older people1. Deciphering the molecular mechanisms underlying sarcopenia has major implications for understanding human ageing2. Yet, progress has been slow, partly due to the difficulties of characterizing skeletal muscle niche heterogeneity (whereby myofibres are the most abundant) and obtaining well-characterized human samples3,4. Here we generate a single-cell/single-nucleus transcriptomic and chromatin accessibility map of human limb skeletal muscles encompassing over 387,000 cells/nuclei from individuals aged 15 to 99 years with distinct fitness and frailty levels. We describe how cell populations change during ageing, including the emergence of new populations in older people, and the cell-specific and multicellular network features (at the transcriptomic and epigenetic levels) associated with these changes. On the basis of cross-comparison with genetic data, we also identify key elements of chromatin architecture that mark susceptibility to sarcopenia. Our study provides a basis for identifying targets in the skeletal muscle that are amenable to medical, pharmacological and lifestyle interventions in late life.


Subject(s)
Aging , Muscle, Skeletal , Single-Cell Analysis , Adolescent , Adult , Aged , Aged, 80 and over , Female , Humans , Male , Middle Aged , Young Adult , Aging/genetics , Aging/pathology , Aging/physiology , Cell Nucleus/metabolism , Chromatin/metabolism , Chromatin/genetics , Disease Susceptibility , Epigenesis, Genetic , Frailty/genetics , Frailty/pathology , Muscle, Skeletal/cytology , Muscle, Skeletal/metabolism , Muscle, Skeletal/pathology , Muscular Atrophy/genetics , Muscular Atrophy/pathology , Sarcopenia/genetics , Sarcopenia/pathology , Transcriptome
4.
Mol Cell Proteomics ; 22(11): 100655, 2023 Nov.
Article in English | MEDLINE | ID: mdl-37793502

ABSTRACT

Molecular clocks and daily feeding cycles support metabolism in peripheral tissues. Although the roles of local clocks and feeding are well defined at the transcriptional level, their impact on governing protein abundance in peripheral tissues is unclear. Here, we determine the relative contributions of local molecular clocks and daily feeding cycles on liver and muscle proteomes during the active phase in mice. LC-MS/MS was performed on liver and gastrocnemius muscle harvested 4 h into the dark phase from WT, Bmal1 KO, and dual liver- and muscle-Bmal1-rescued mice under either ad libitum feeding or time-restricted feeding during the dark phase. Feeding-fasting cycles had only minimal effects on levels of liver proteins and few, if any, on the muscle proteome. In contrast, Bmal1 KO altered the abundance of 674 proteins in liver and 80 proteins in muscle. Local rescue of liver and muscle Bmal1 restored ∼50% of proteins in liver and ∼25% in muscle. These included proteins involved in fatty acid oxidation in liver and carbohydrate metabolism in muscle. For liver, proteins involved in de novo lipogenesis were largely dependent on Bmal1 function in other tissues (i.e., the wider clock system). Proteins regulated by BMAL1 in liver and muscle were enriched for secreted proteins. We found that the abundance of fibroblast growth factor 1, a liver secreted protein, requires BMAL1 and that autocrine fibroblast growth factor 1 signaling modulates mitochondrial respiration in hepatocytes. In liver and muscle, BMAL1 is a more potent regulator of dark phase proteomes than daily feeding cycles, highlighting the need to assess protein levels in addition to mRNA when investigating clock mechanisms. The proteome is more extensively regulated by BMAL1 in liver than in muscle, and many metabolic pathways in peripheral tissues are reliant on the function of the clock system as a whole.


Subject(s)
Circadian Clocks , Circadian Rhythm , Animals , Mice , ARNTL Transcription Factors/genetics , ARNTL Transcription Factors/metabolism , Chromatography, Liquid , Circadian Clocks/genetics , Circadian Rhythm/genetics , Fibroblast Growth Factor 1/metabolism , Liver/metabolism , Muscles/metabolism , Proteome/metabolism , Tandem Mass Spectrometry
5.
FEBS Open Bio ; 13(7): 1228-1237, 2023 07.
Article in English | MEDLINE | ID: mdl-37394994

ABSTRACT

Circadian rhythms coordinate biological processes with Earth's 24-h daily light/dark cycle. In the last years, efforts in the field of chronobiology have sought to understand the ways in which the circadian clock controls transcription across tissues and cells. This has been supported by the development of different bioinformatic approaches that allow the identification of 24-h oscillating transcripts. This workflow aims to describe how to isolate muscle stem cells for RNA sequencing analysis from a typical circadian experiment and introduces bioinformatic tools suitable for the analysis of circadian transcriptomes.


Subject(s)
Satellite Cells, Skeletal Muscle , Transcriptome , Transcriptome/genetics , Workflow , Circadian Rhythm/genetics , Muscles
6.
Cell Rep ; 42(6): 112588, 2023 06 27.
Article in English | MEDLINE | ID: mdl-37267101

ABSTRACT

Physiology is regulated by interconnected cell and tissue circadian clocks. Disruption of the rhythms generated by the concerted activity of these clocks is associated with metabolic disease. Here we tested the interactions between clocks in two critical components of organismal metabolism, liver and skeletal muscle, by rescuing clock function either in each organ separately or in both organs simultaneously in otherwise clock-less mice. Experiments showed that individual clocks are partially sufficient for tissue glucose metabolism, yet the connections between both tissue clocks coupled to daily feeding rhythms support systemic glucose tolerance. This synergy relies in part on local transcriptional control of the glucose machinery, feeding-responsive signals such as insulin, and metabolic cycles that connect the muscle and liver. We posit that spatiotemporal mechanisms of muscle and liver play an essential role in the maintenance of systemic glucose homeostasis and that disrupting this diurnal coordination can contribute to metabolic disease.


Subject(s)
Circadian Clocks , Mice , Animals , Circadian Clocks/physiology , Circadian Rhythm/physiology , Liver/metabolism , Muscle, Skeletal/metabolism , Glucose/metabolism
7.
Dev Cell ; 58(12): 1052-1070.e10, 2023 06 19.
Article in English | MEDLINE | ID: mdl-37105173

ABSTRACT

Organismal homeostasis and regeneration are predicated on committed stem cells that can reside for long periods in a mitotically dormant but reversible cell-cycle arrest state defined as quiescence. Premature escape from quiescence is detrimental, as it results in stem cell depletion, with consequent defective tissue homeostasis and regeneration. Here, we report that Polycomb Ezh1 confers quiescence to murine muscle stem cells (MuSCs) through a non-canonical function. In the absence of Ezh1, MuSCs spontaneously exit quiescence. Following repeated injuries, the MuSC pool is progressively depleted, resulting in failure to sustain proper muscle regeneration. Rather than regulating repressive histone H3K27 methylation, Ezh1 maintains gene expression of the Notch signaling pathway in MuSCs. Selective genetic reconstitution of the Notch signaling corrects stem cell number and re-establishes quiescence of Ezh1-/- MuSCs.


Subject(s)
Signal Transduction , Stem Cells , Mice , Animals , Cell Division , Cell Cycle Checkpoints , Muscles
8.
FEBS J ; 290(5): 1156-1160, 2023 03.
Article in English | MEDLINE | ID: mdl-36856679

ABSTRACT

The contribution of cellular senescence to a diverse range of biological processes, including normal physiology, ageing, and pathology were long overlooked but have now taken centre stage. In this Editorial, we will briefly outline the review and original work articles contained in The FEBS Journal's Special Issue on Senescence in Ageing and Disease. It is beginning to be appreciated that senescent cells can exert both beneficial and adverse effects following tissue injury. Additionally, while these cells play critical roles for maintaining a healthy physiology, they also promote ageing and certain pathological conditions (including developmental disorders). Progress has been made in re-defining and identifying senescent cells, especially in slow-proliferating or terminally differentiated tissues, such as the brain and cardiovascular system. Novel approaches and techniques for isolating senescent cells will greatly increase our appreciation for senescent properties in tissues. The inter-organ communication between senescent cells and other residents of the tissue microenvironment, via the senescence-associated secretory phenotype (SASP), is a focus of several reviews in this Special Issue. The importance of the SASP in promoting tumour development and the evolution of SARS CoV-2 variants is also highlighted. In one of the two original articles included in the issue, the impact of dietary macronutrients and the presence of senescent cells in mice is investigated. Lastly, we continue to deepen our understanding on the use of senolytics and senomorphics to specifically target senescent cells or their secreted components, respectively, which is discussed in several of the reviews included here.


Subject(s)
COVID-19 , Animals , Mice , Cellular Senescence , Aging , Cell Differentiation , Brain
9.
Methods Mol Biol ; 2640: 73-88, 2023.
Article in English | MEDLINE | ID: mdl-36995588

ABSTRACT

In recent years, evidence showing metabolism as a fundamental regulator of stem cell functions has emerged. In skeletal muscle, its stem cells (satellite cells) sustain muscle regeneration, although they lose their regenerative potential with aging, and this has been attributed, at least in part, to changes in their metabolism. In this chapter, we describe a protocol to analyze the metabolism of satellite cells using the Seahorse technology, which can be applied to aging mice.


Subject(s)
Smegmamorpha , Mice , Animals , Smegmamorpha/metabolism , Aging , Oxygen Consumption , Muscle, Skeletal/metabolism , Stem Cells , Hydrogen-Ion Concentration
11.
FEBS J ; 290(5): 1161-1185, 2023 03.
Article in English | MEDLINE | ID: mdl-35811491

ABSTRACT

Cellular senescence is a state of irreversible cell cycle arrest that often emerges after tissue damage and in age-related diseases. Through the production of a multicomponent secretory phenotype (SASP), senescent cells can impact the regeneration and function of tissues. However, the effects of senescent cells and their SASP are very heterogeneous and depend on the tissue environment and type as well as the duration of injury, the degree of persistence of senescent cells and the organism's age. While the transient presence of senescent cells is widely believed to be beneficial, recent data suggest that it is detrimental for tissue regeneration after acute damage. Furthermore, although senescent cell persistence is typically associated with the progression of age-related chronic degenerative diseases, it now appears to be also necessary for correct tissue function in the elderly. Here, we discuss what is currently known about the roles of senescent cells and their SASP in tissue regeneration in ageing and age-related diseases, highlighting their (negative and/or positive) contributions. We provide insight for future research, including the possibility of senolytic-based therapies and cellular reprogramming, with aims ranging from enhancing tissue repair to extending a healthy lifespan.


Subject(s)
Cellular Senescence , Longevity , Cellular Senescence/genetics , Phenotype , Biological Transport
12.
Nature ; 613(7942): 169-178, 2023 01.
Article in English | MEDLINE | ID: mdl-36544018

ABSTRACT

Tissue regeneration requires coordination between resident stem cells and local niche cells1,2. Here we identify that senescent cells are integral components of the skeletal muscle regenerative niche that repress regeneration at all stages of life. The technical limitation of senescent-cell scarcity3 was overcome by combining single-cell transcriptomics and a senescent-cell enrichment sorting protocol. We identified and isolated different senescent cell types from damaged muscles of young and old mice. Deeper transcriptome, chromatin and pathway analyses revealed conservation of cell identity traits as well as two universal senescence hallmarks (inflammation and fibrosis) across cell type, regeneration time and ageing. Senescent cells create an aged-like inflamed niche that mirrors inflammation associated with ageing (inflammageing4) and arrests stem cell proliferation and regeneration. Reducing the burden of senescent cells, or reducing their inflammatory secretome through CD36 neutralization, accelerates regeneration in young and old mice. By contrast, transplantation of senescent cells delays regeneration. Our results provide a technique for isolating in vivo senescent cells, define a senescence blueprint for muscle, and uncover unproductive functional interactions between senescent cells and stem cells in regenerative niches that can be overcome. As senescent cells also accumulate in human muscles, our findings open potential paths for improving muscle repair throughout life.


Subject(s)
Aging , Cellular Senescence , Inflammation , Muscle, Skeletal , Regeneration , Stem Cell Niche , Aged , Animals , Humans , Mice , Aging/metabolism , Aging/physiology , Cellular Senescence/physiology , Inflammation/metabolism , Inflammation/physiopathology , Muscle, Skeletal/physiology , Muscle, Skeletal/physiopathology , Stem Cells/physiology , Fibrosis/physiopathology , Stem Cell Niche/physiology , Transcriptome , Chromatin/genetics , Geroscience
13.
Aging Biol ; 12023.
Article in English | MEDLINE | ID: mdl-38500537

ABSTRACT

On April 28th, 2022, a group of scientific leaders gathered virtually to discuss molecular and cellular mechanisms of responses to stress. Conditions of acute, high-intensity stress are well documented to induce a series of adaptive responses that aim to promote survival until the stress has dissipated and then guide recovery. However, high-intensity or persistent stress that goes beyond the cell's compensatory capacity are countered with resilience strategies that are not completely understood. These adaptative strategies, which are an essential component of the study of aging biology, were the theme of the meeting. Specific topics discussed included mechanisms of proteostasis, such as the unfolded protein response (UPR) and the integrated stress response (ISR), as well as mitochondrial stress and lysosomal stress responses. Attention was also given to regulatory mechanisms and associated biological processes linked to age-related conditions, such as muscle loss and regeneration, cancer, senescence, sleep quality, and degenerative disease, with a general focus on the relevance of stress responses to frailty. We summarize the concepts and potential future directions that emerged from the discussion and highlight their relevance to the study of aging and age-related chronic diseases.

14.
Nat Aging ; 2: 851-866, 2022 09.
Article in English | MEDLINE | ID: mdl-36438588

ABSTRACT

Cellular senescence is a stable type of cell cycle arrest triggered by different stresses. As such, senescence drives age-related diseases and curbs cellular replicative potential. Here, we show that 3-deazaadenosine (3DA), an S-adenosyl homocysteinase (AHCY) inhibitor, alleviates replicative and oncogene-induced senescence. 3DA-treated senescent cells showed reduced global Histone H3 Lysine 36 trimethylation (H3K36me3), an epigenetic modification that marks the bodies of actively transcribed genes. By integrating transcriptome and epigenome data, we demonstrate that 3DA treatment affects key factors of the senescence transcriptional program. Remarkably, 3DA treatment alleviated senescence and increased the proliferative and regenerative potential of muscle stem cells from very old mice in vitro and in vivo. Moreover, ex vivo 3DA treatment was sufficient to enhance the engraftment of human umbilical cord blood (UCB) cells in immunocompromised mice. Together, our results identify 3DA as a promising drug enhancing the efficiency of cellular therapies by restraining senescence.


Subject(s)
Cellular Senescence , Histones , Humans , Mice , Animals , Histones/genetics , Cellular Senescence/genetics , Tubercidin/pharmacology , Epigenesis, Genetic
16.
Cell Stem Cell ; 29(9): 1298-1314.e10, 2022 09 01.
Article in English | MEDLINE | ID: mdl-35998641

ABSTRACT

Skeletal muscle regeneration depends on the correct expansion of resident quiescent stem cells (satellite cells), a process that becomes less efficient with aging. Here, we show that mitochondrial dynamics are essential for the successful regenerative capacity of satellite cells. The loss of mitochondrial fission in satellite cells-due to aging or genetic impairment-deregulates the mitochondrial electron transport chain (ETC), leading to inefficient oxidative phosphorylation (OXPHOS) metabolism and mitophagy and increased oxidative stress. This state results in muscle regenerative failure, which is caused by the reduced proliferation and functional loss of satellite cells. Regenerative functions can be restored in fission-impaired or aged satellite cells by the re-establishment of mitochondrial dynamics (by activating fission or preventing fusion), OXPHOS, or mitophagy. Thus, mitochondrial shape and physical networking controls stem cell regenerative functions by regulating metabolism and proteostasis. As mitochondrial fission occurs less frequently in the satellite cells in older humans, our findings have implications for regeneration therapies in sarcopenia.


Subject(s)
Mitochondrial Dynamics , Mitophagy , Aged , Humans , Mitochondria/metabolism , Muscle, Skeletal/metabolism , Muscles/metabolism , Stem Cells/metabolism
17.
Sci Adv ; 8(26): eabo2896, 2022 07.
Article in English | MEDLINE | ID: mdl-35767612

ABSTRACT

Life on Earth anticipates recurring 24-hour environmental cycles via genetically encoded molecular clocks active in all mammalian organs. Communication between these clocks controls circadian homeostasis. Intertissue communication is mediated, in part, by temporal coordination of metabolism. Here, we characterize the extent to which clocks in different organs control systemic metabolic rhythms, an area that remains largely unexplored. We analyzed the metabolome of serum from mice with tissue-specific expression of the clock gene Bmal1. Having functional hepatic and muscle clocks can only drive a minority (13%) of systemic metabolic rhythms. Conversely, limiting Bmal1 expression to the central pacemaker in the brain restores rhythms to 57% of circulatory metabolites. Rhythmic feeding imposed on clockless mice resulted in a similar rescue, indicating that the central clock mainly regulates metabolic rhythms via behavior. These findings explicate the circadian communication between tissues and highlight the importance of the central clock in governing those signals.

18.
Cell ; 185(10): 1777-1792.e21, 2022 05 12.
Article in English | MEDLINE | ID: mdl-35512705

ABSTRACT

Spatially resolved transcriptomic technologies are promising tools to study complex biological processes such as mammalian embryogenesis. However, the imbalance between resolution, gene capture, and field of view of current methodologies precludes their systematic application to analyze relatively large and three-dimensional mid- and late-gestation embryos. Here, we combined DNA nanoball (DNB)-patterned arrays and in situ RNA capture to create spatial enhanced resolution omics-sequencing (Stereo-seq). We applied Stereo-seq to generate the mouse organogenesis spatiotemporal transcriptomic atlas (MOSTA), which maps with single-cell resolution and high sensitivity the kinetics and directionality of transcriptional variation during mouse organogenesis. We used this information to gain insight into the molecular basis of spatial cell heterogeneity and cell fate specification in developing tissues such as the dorsal midbrain. Our panoramic atlas will facilitate in-depth investigation of longstanding questions concerning normal and abnormal mammalian development.


Subject(s)
Organogenesis , Transcriptome , Animals , DNA/genetics , Embryo, Mammalian , Female , Gene Expression Profiling/methods , Mammals/genetics , Mice , Organogenesis/genetics , Pregnancy , Sequence Analysis, RNA/methods , Single-Cell Analysis/methods , Transcriptome/genetics
19.
Cytometry A ; 101(10): 862-876, 2022 10.
Article in English | MEDLINE | ID: mdl-35608022

ABSTRACT

Autofluorescence (AF) is an intrinsic characteristic of cells caused by the presence of fluorescent biological compounds within the cell; these can include structural proteins (e.g., collagen and elastin), cellular organelles, and metabolites (e.g., aromatic amino acids). In flow cytometric studies, the presence of AF can lead to reduced antigen and population resolution, as well as the presence of artifacts due to false positive events. Here, we describe a methodology that uses the inherent ability of full spectrum cytometry to treat AF as a fluorochrome and to thereby separate it from the other fluorochromes of the assay. This method can be applied to complex inflamed tissues; for instance, in regenerating skeletal muscle we have developed a 16-color panel targeting highly autofluorescent myeloid cells. This represents a first step toward overcoming technological limitations in flow cytometry due to AF.


Subject(s)
Elastin , Fluorescent Dyes , Amino Acids, Aromatic , Flow Cytometry/methods , Muscle, Skeletal , Myeloid Cells
20.
Trends Cell Biol ; 32(10): 835-840, 2022 10.
Article in English | MEDLINE | ID: mdl-35370056

ABSTRACT

The incredible ability of satellite cells to regenerate muscle has captivated much of the research field's attention over the past decades. Versatile, enigmatic, vigorous, and skillful, the satellite cell is the optimal actor to cast in a regenerative epic, grabbing contracts and making headlines. However, the scenarios that play out during normal muscle usage, such as during exercise and aging, diverge from the experimental setup staged to spotlight satellite cells. Recent studies examining myofibers have highlighted novel attributes, including a capacity for self-repair. We discuss here the distinctions between myofiber self-repair and satellite-cell-dependent regeneration and how they may cooperate to repair damage after exercise, in myopathies, and in aging.


Subject(s)
Satellite Cells, Skeletal Muscle , Aging/physiology , Humans , Muscle, Skeletal , Stem Cells
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