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1.
Proc Natl Acad Sci U S A ; 121(20): e2321919121, 2024 May 14.
Article En | MEDLINE | ID: mdl-38713625

Successful regeneration of missing tissues requires seamless integration of positional information along the body axes. Planarians, which regenerate from almost any injury, use conserved, developmentally important signaling pathways to pattern the body axes. However, the molecular mechanisms which facilitate cross talk between these signaling pathways to integrate positional information remain poorly understood. Here, we report a p21-activated kinase (smed-pak1) which functionally integrates the anterior-posterior (AP) and the medio-lateral (ML) axes. pak1 inhibits WNT/ß-catenin signaling along the AP axis and, functions synergistically with the ß-catenin-independent WNT signaling of the ML axis. Furthermore, this functional integration is dependent on warts and merlin-the components of the Hippo/Yorkie (YKI) pathway. Hippo/YKI pathway is a critical regulator of body size in flies and mice, but our data suggest the pathway regulates body axes patterning in planarians. Our study provides a signaling network integrating positional information which can mediate coordinated growth and patterning during planarian regeneration.


Body Patterning , Planarians , Protein Serine-Threonine Kinases , Regeneration , Wnt Signaling Pathway , p21-Activated Kinases , Animals , Regeneration/physiology , Planarians/physiology , Planarians/genetics , Planarians/metabolism , p21-Activated Kinases/metabolism , p21-Activated Kinases/genetics , Wnt Signaling Pathway/physiology , Body Patterning/genetics , Body Patterning/physiology , Protein Serine-Threonine Kinases/metabolism , Protein Serine-Threonine Kinases/genetics , Trans-Activators/metabolism , Trans-Activators/genetics , Nuclear Proteins/metabolism , Nuclear Proteins/genetics
2.
Nat Commun ; 15(1): 4032, 2024 May 13.
Article En | MEDLINE | ID: mdl-38740753

Animal regeneration involves coordinated responses across cell types throughout the animal body. In endosymbiotic animals, whether and how symbionts react to host injury and how cellular responses are integrated across species remain unexplored. Here, we study the acoel Convolutriloba longifissura, which hosts symbiotic Tetraselmis sp. green algae and can regenerate entire bodies from tissue fragments. We show that animal injury causes a decline in the photosynthetic efficiency of the symbiotic algae, alongside two distinct, sequential waves of transcriptional responses in acoel and algal cells. The initial algal response is characterized by the upregulation of a cohort of photosynthesis-related genes, though photosynthesis is not necessary for regeneration. A conserved animal transcription factor, runt, is induced after injury and required for acoel regeneration. Knockdown of Cl-runt dampens transcriptional responses in both species and further reduces algal photosynthetic efficiency post-injury. Our results suggest that the holobiont functions as an integrated unit of biological organization by coordinating molecular networks across species through the runt-dependent animal regeneration program.


Photosynthesis , Regeneration , Symbiosis , Animals , Regeneration/physiology , Chlorophyta/genetics , Transcription Factors/metabolism , Transcription Factors/genetics
3.
Ophthalmic Plast Reconstr Surg ; 40(3): e89-e91, 2024.
Article En | MEDLINE | ID: mdl-38738721

A 40-year-old woman underwent periocular plasma skin regeneration, a cosmetic treatment for periorbital rejuvenation. She subsequently developed bilateral thermal keratitis, manifesting as blurred vision, irritation, and redness, with a vision decrease to 20/60 and 20/50 in her OD and OS, respectively. Examination demonstrated bilateral large, irregular corneal epithelial defects and edema, necessitating treatment with amniotic membrane grafts, bandage contact lenses, and hypertonic saline. One year posttreatment, her visual acuity improved to 20/20 and 20/25, albeit with ongoing symptomatic dryness and bilateral anterior stromal haze. This case, as only the second reported instance of ocular damage from periocular plasma skin regeneration, underscores the need for heightened awareness of potential ocular complications following plasma skin regeneration and reinforces the importance of protective measures during periocular procedures.


Eye Burns , Humans , Female , Adult , Eye Burns/chemically induced , Eye Burns/diagnosis , Keratitis/diagnosis , Keratitis/etiology , Keratitis/physiopathology , Plasma Gases/therapeutic use , Regeneration/physiology , Cosmetic Techniques/adverse effects , Visual Acuity
4.
J Exp Med ; 221(6)2024 Jun 03.
Article En | MEDLINE | ID: mdl-38668758

Regulatory T (Treg) cells are classically known for their critical immunosuppressive functions that support peripheral tolerance. More recent work has demonstrated that Treg cells produce pro-repair mediators independent of their immunosuppressive function, a process that is critical to repair and regeneration in response to numerous tissue insults. These factors act on resident parenchymal and structural cells to initiate repair in a tissue-specific context. This review examines interactions between Treg cells and tissue-resident non-immune cells-in the context of tissue repair, fibrosis, and cancer-and discusses areas for future exploration.


Cell Communication , Regeneration , T-Lymphocytes, Regulatory , T-Lymphocytes, Regulatory/immunology , Humans , Animals , Regeneration/physiology , Cell Communication/immunology , Wound Healing/immunology , Fibrosis , Neoplasms/immunology , Neoplasms/pathology
5.
Nat Commun ; 15(1): 3340, 2024 Apr 22.
Article En | MEDLINE | ID: mdl-38649703

During organ regeneration, after the initial responses to injury, gene expression patterns similar to those in normal development are reestablished during subsequent morphogenesis phases. This supports the idea that regeneration recapitulates development and predicts the existence of genes that reboot the developmental program after the initial responses. However, such rebooting mechanisms are largely unknown. Here, we explore core rebooting factors that operate during Xenopus limb regeneration. Transcriptomic analysis of larval limb blastema reveals that hoxc12/c13 show the highest regeneration specificity in expression. Knocking out each of them through genome editing inhibits cell proliferation and expression of a group of genes that are essential for development, resulting in autopod regeneration failure, while limb development and initial blastema formation are not affected. Furthermore, the induction of hoxc12/c13 expression partially restores froglet regenerative capacity which is normally very limited compared to larval regeneration. Thus, we demonstrate the existence of genes that have a profound impact alone on rebooting of the developmental program in a regeneration-specific manner.


Extremities , Gene Expression Regulation, Developmental , Homeodomain Proteins , Regeneration , Xenopus Proteins , Xenopus laevis , Animals , Cell Proliferation/genetics , Extremities/physiology , Gene Editing , Gene Expression Profiling , Homeodomain Proteins/metabolism , Homeodomain Proteins/genetics , Larva/growth & development , Larva/genetics , Regeneration/genetics , Regeneration/physiology , Xenopus Proteins/metabolism , Xenopus Proteins/genetics , Male , Female
6.
Cell Rep ; 43(4): 114092, 2024 Apr 23.
Article En | MEDLINE | ID: mdl-38607913

Macrophages conduct critical roles in heart repair, but the niche required to nurture and anchor them is poorly studied. Here, we investigated the macrophage niche in the regenerating heart. We analyzed cell-cell interactions through published single-cell RNA sequencing datasets and identified a strong interaction between fibroblast/epicardial (Fb/Epi) cells and macrophages. We further visualized the association of macrophages with Fb/Epi cells and the blockage of macrophage response without Fb/Epi cells in the regenerating zebrafish heart. Moreover, we found that ptx3a+ epicardial cells associate with reparative macrophages, and their depletion resulted in fewer reparative macrophages. Further, we identified csf1a expression in ptx3a+ cells and determined that pharmacological inhibition of the csf1a pathway or csf1a knockout blocked the reparative macrophage response. Moreover, we found that genetic overexpression of csf1a enhanced the reparative macrophage response with or without heart injury. Altogether, our studies illuminate a cardiac Fb/Epi niche, which mediates a beneficial macrophage response after heart injury.


Fibroblasts , Heart , Macrophages , Regeneration , Zebrafish , Animals , C-Reactive Protein/metabolism , C-Reactive Protein/genetics , Fibroblasts/metabolism , Heart/physiology , Heart Injuries/metabolism , Heart Injuries/pathology , Macrophages/metabolism , Pericardium/metabolism , Pericardium/cytology , Regeneration/physiology , Serum Amyloid P-Component/metabolism , Serum Amyloid P-Component/genetics , Zebrafish/metabolism , Zebrafish Proteins/metabolism , Zebrafish Proteins/genetics
7.
J Invest Dermatol ; 144(5): 936-949, 2024 May.
Article En | MEDLINE | ID: mdl-38643988

The epidermis is the body's first line of protection against dehydration and pathogens, continually regenerating the outermost protective skin layers throughout life. During both embryonic development and wound healing, epidermal stem and progenitor cells must respond to external stimuli and insults to build, maintain, and repair the cutaneous barrier. Recent advances in CRISPR-based methods for cell lineage tracing have remarkably expanded the potential for experiments that track stem and progenitor cell proliferation and differentiation over the course of tissue and even organismal development. Additional tools for DNA-based recording of cellular signaling cues promise to deepen our understanding of the mechanisms driving normal skin morphogenesis and response to stressors as well as the dysregulation of cell proliferation and differentiation in skin diseases and cancer. In this review, we highlight cutting-edge methods for cell lineage tracing, including in organoids and model organisms, and explore how cutaneous biology researchers might leverage these techniques to elucidate the developmental programs that support the regenerative capacity and plasticity of the skin.


Cell Differentiation , Cell Lineage , Humans , Animals , Skin/cytology , Stem Cells/cytology , Cell Proliferation , Regeneration/physiology
8.
Curr Top Dev Biol ; 158: 151-177, 2024.
Article En | MEDLINE | ID: mdl-38670704

The process of skeletal muscle regeneration involves a coordinated interplay of specific cellular and molecular interactions within the injury site. This review provides an overview of the cellular and molecular components in regenerating skeletal muscle, focusing on how these cells or molecules in the niche regulate muscle stem cell functions. Dysfunctions of muscle stem cell-to-niche cell communications during aging and disease will also be discussed. A better understanding of how niche cells coordinate with muscle stem cells for muscle repair will greatly aid the development of therapeutic strategies for treating muscle-related disorders.


Homeostasis , Muscle, Skeletal , Regeneration , Stem Cell Niche , Regeneration/physiology , Humans , Muscle, Skeletal/physiology , Muscle, Skeletal/cytology , Animals , Stem Cell Niche/physiology , Stem Cells/cytology , Stem Cells/physiology , Stem Cells/metabolism
9.
Curr Top Dev Biol ; 158: 179-201, 2024.
Article En | MEDLINE | ID: mdl-38670705

The role of the cellular microenvironment has recently gained attention in the context of muscle health, adaption, and disease. Emerging evidence supports major roles for the extracellular matrix (ECM) in regeneration and the dynamic regulation of the satellite cell niche. Satellite cells normally reside in a quiescent state in healthy muscle, but upon muscle injury, they activate, proliferate, and fuse to the damaged fibers to restore muscle function and architecture. This chapter reviews the composition and mechanical properties of skeletal muscle ECM and the role of these factors in contributing to the satellite cell niche that impact muscle regeneration. In addition, the chapter details the effects of satellite cell-matrix interactions and provides evidence that there is bidirectional regulation affecting both the cellular and extracellular microenvironment within skeletal muscle. Lastly, emerging methods to investigate satellite cell-matrix interactions will be presented.


Cellular Microenvironment , Extracellular Matrix , Muscle, Skeletal , Satellite Cells, Skeletal Muscle , Humans , Animals , Satellite Cells, Skeletal Muscle/cytology , Satellite Cells, Skeletal Muscle/physiology , Satellite Cells, Skeletal Muscle/metabolism , Extracellular Matrix/metabolism , Muscle, Skeletal/physiology , Muscle, Skeletal/cytology , Adaptation, Physiological , Stem Cell Niche/physiology , Regeneration/physiology , Muscular Diseases/pathology , Muscular Diseases/physiopathology , Stem Cells/cytology , Stem Cells/physiology
10.
Curr Top Dev Biol ; 158: 203-220, 2024.
Article En | MEDLINE | ID: mdl-38670706

Skeletal muscle is composed of a variety of tissue and non-tissue resident cells that participate in homeostasis. In particular, the muscle stem cell niche is a dynamic system, requiring direct and indirect communications between cells, involving local and remote cues. Interactions within the niche must happen in a timely manner for the maintenance or recovery of the homeostatic niche. For instance, after an injury, pro-myogenic cues delivered too early will impact on muscle stem cell proliferation, delaying the repair process. Within the niche, myofibers, endothelial cells, perivascular cells (pericytes, smooth muscle cells), fibro-adipogenic progenitors, fibroblasts, and immune cells are in close proximity with each other. Each cell behavior, membrane profile, and secretome can interfere with muscle stem cell fate and skeletal muscle regeneration. On top of that, the muscle stem cell niche can also be modified by extra-muscle (remote) cues, as other tissues may act on muscle regeneration via the production of circulating factors or the delivery of cells. In this review, we highlight recent publications evidencing both local and remote effectors of the muscle stem cell niche.


Cell Communication , Muscle, Skeletal , Stem Cell Niche , Animals , Muscle, Skeletal/cytology , Muscle, Skeletal/physiology , Humans , Stem Cell Niche/physiology , Regeneration/physiology , Muscle Development , Cell Differentiation
11.
Curr Top Dev Biol ; 158: 221-238, 2024.
Article En | MEDLINE | ID: mdl-38670707

The skeletal muscle is well known for its remarkable ability to regenerate after injuries. The regeneration is a complex and dynamic process that involves muscle stem cells (also called muscle satellite cells, MuSCs), fibro-adipogenic progenitors (FAPs), immune cells, and other muscle-resident cell populations. The MuSCs are the myogenic cell populaiton that contribute nuclei directly to the regenerated myofibers, while the other cell types collaboratively establish a microenvironment that facilitates myogenesis of MuSCs. The myogenic process includes activation, proliferation and differentiationof MuSCs, and subsequent fusion their descendent mononuclear myocytes into multinuclear myotubes. While the contributions of FAPs and immune cells to this microenvironment have been well studied, the influence of MuSCs on other cell types remains poorly understood. This review explores recent evidence supporting the potential role of MuSCs as immunomodulators during muscle regeneration, either through cytokine production or ligand-receptor interactions.


Muscle, Skeletal , Regeneration , Regeneration/physiology , Animals , Humans , Muscle, Skeletal/physiology , Muscle, Skeletal/cytology , Muscle Development , Stem Cells/cytology , Stem Cells/metabolism , Satellite Cells, Skeletal Muscle/cytology , Satellite Cells, Skeletal Muscle/metabolism , Satellite Cells, Skeletal Muscle/physiology , Cell Differentiation , Immunologic Factors/pharmacology , Immunologic Factors/metabolism , Immunomodulation
12.
Curr Top Dev Biol ; 158: 239-251, 2024.
Article En | MEDLINE | ID: mdl-38670708

Muscle regeneration is a complex process orchestrated by multiple steps. Recent findings indicate that inflammatory responses could play central roles in bridging initial muscle injury responses and timely muscle injury reparation. The various types of immune cells and cytokines have crucial roles in muscle regeneration process. In this review, we provide an overview of the functions of acute inflammation in muscle regeneration.


Immune System , Muscle, Skeletal , Regeneration , Regeneration/immunology , Regeneration/physiology , Animals , Humans , Muscle, Skeletal/physiology , Muscle, Skeletal/immunology , Inflammation/immunology , Cytokines/metabolism
13.
Curr Top Dev Biol ; 158: 15-51, 2024.
Article En | MEDLINE | ID: mdl-38670703

Skeletal muscle is a highly represented tissue in mammals and is composed of fibers that are extremely adaptable and capable of regeneration. This characteristic of muscle fibers is made possible by a cell type called satellite cells. Adjacent to the fibers, satellite cells are found in a quiescent state and located between the muscle fibers membrane and the basal lamina. These cells are required for the growth and regeneration of skeletal muscle through myogenesis. This process is known to be tightly sequenced from the activation to the differentiation/fusion of myofibers. However, for the past fifteen years, researchers have been interested in examining satellite cell heterogeneity and have identified different subpopulations displaying distinct characteristics based on localization, quiescence state, stemness capacity, cell-cycle progression or gene expression. A small subset of satellite cells appears to represent multipotent long-term self-renewing muscle stem cells (MuSC). All these distinctions led us to the hypothesis that the characteristics of myogenesis might not be linear and therefore may be more permissive based on the evidence that satellite cells are a heterogeneous population. In this review, we discuss the different subpopulations that exist within the satellite cell pool to highlight the heterogeneity and to gain further understanding of the myogenesis progress. Finally, we discuss the long term self-renewing MuSC subpopulation that is capable of dividing asymmetrically and discuss the molecular mechanisms regulating MuSC polarization during health and disease.


Muscle Development , Muscle, Skeletal , Satellite Cells, Skeletal Muscle , Satellite Cells, Skeletal Muscle/cytology , Satellite Cells, Skeletal Muscle/physiology , Satellite Cells, Skeletal Muscle/metabolism , Animals , Humans , Muscle, Skeletal/cytology , Muscle, Skeletal/physiology , Cell Differentiation , Regeneration/physiology
14.
Curr Top Dev Biol ; 158: 307-339, 2024.
Article En | MEDLINE | ID: mdl-38670711

Recent research has highlighted an important role for the molecular circadian machinery in the regulation of tissue-specific function and stress responses. Indeed, disruption of circadian function, which is pervasive in modern society, is linked to accelerated aging, obesity, and type 2 diabetes. Furthermore, evidence supporting the importance of the circadian clock within both the mature muscle tissue and satellite cells to regulate the maintenance of muscle mass and repair capacity in response injury has recently emerged. Here, we review the discovery of circadian clocks within the satellite cell (a.k.a. adult muscle stem cell) and how they act to regulate metabolism, epigenetics, and myogenesis during both healthy and diseased states.


Circadian Rhythm , Regeneration , Satellite Cells, Skeletal Muscle , Satellite Cells, Skeletal Muscle/physiology , Satellite Cells, Skeletal Muscle/cytology , Satellite Cells, Skeletal Muscle/metabolism , Animals , Regeneration/physiology , Humans , Circadian Rhythm/physiology , Muscle, Skeletal/physiology , Muscle Development , Circadian Clocks/physiology , Epigenesis, Genetic
15.
FASEB J ; 38(9): e23634, 2024 May 15.
Article En | MEDLINE | ID: mdl-38679876

Insulin-like growth factor-I (IGF-I) facilitates mitotic and anabolic actions in all tissues. In skeletal muscle, IGF-I can promote growth and resolution of damage by promoting satellite cell proliferation and differentiation, suppressing inflammation, and enhancing fiber formation. While the most well-characterized form of IGF-I is the mature protein, alternative splicing and post-translational modification complexity lead to several additional forms of IGF-I. Previous studies showed muscle efficiently stores glycosylated pro-IGF-I. However, non-glycosylated forms display more efficient IGF-I receptor activation in vitro, suggesting that the removal of the glycosylated C terminus is a necessary step to enable increased activity. We employed CRISPR-Cas9 gene editing to ablate IGF-I glycosylation sites (2ND) or its cleavage site (3RA) in mice to determine the necessity of glycosylation or cleavage for IGF-I function in postnatal growth and during muscle regeneration. 3RA mice had the highest circulating and muscle IGF-I content, whereas 2ND mice had the lowest levels compared to wild-type mice. After weaning, 4-week-old 2ND mice exhibited higher body and skeletal muscle mass than other strains. However, by 16 weeks of age, muscle and body size differences disappeared. Even though 3RA mice had more IGF-I stored in muscle in homeostatic conditions, regeneration was delayed after cardiotoxin-induced injury, with prolonged necrosis most evident at 5 days post injury (dpi). In contrast, 2ND displayed improved regeneration with reduced necrosis, and greater fiber size and muscle mass at 11 and 21 dpi. Overall, these results demonstrate that while IGF-I glycosylation may be important for storage, cleavage is needed to enable IGF-I to be used for efficient activity in postnatal growth and following acute injury.


Insulin-Like Growth Factor I , Muscle, Skeletal , Regeneration , Animals , Glycosylation , Insulin-Like Growth Factor I/metabolism , Insulin-Like Growth Factor I/genetics , Muscle, Skeletal/metabolism , Mice , Regeneration/physiology , Mice, Inbred C57BL , Male , Female
16.
BMC Biol ; 22(1): 98, 2024 Apr 29.
Article En | MEDLINE | ID: mdl-38679694

BACKGROUND: The ability of animals to regenerate damaged tissue is a complex process that involves various cellular mechanisms. As animals age, they lose their regenerative abilities, making it essential to understand the underlying mechanisms that limit regenerative ability during aging. Drosophila melanogaster wing imaginal discs are epithelial structures that can regenerate after tissue injury. While significant research has focused on investigating regenerative responses during larval stages our comprehension of the regenerative potential of pupal wings and the underlying mechanisms contributing to the decline of regenerative responses remains limited. RESULTS: Here, we explore the temporal dynamics during pupal development of the proliferative response triggered by the induction of cell death, a typical regenerative response. Our results indicate that the apoptosis-induced proliferative response can continue until 34 h after puparium formation (APF), beyond this point cell death alone is not sufficient to induce a regenerative response. Under normal circumstances, cell proliferation ceases around 24 h APF. Interestingly, the failure of reinitiating the cell cycle beyond this time point is not attributed to an incapacity to activate the JNK pathway. Instead, our results suggest that the function of the ecdysone-responsive transcription factor E93 is involved in limiting the apoptosis-induced proliferative response during pupal development. CONCLUSIONS: Our study shows that apoptosis can prolong the proliferative period of cells in the wing during pupal development as late as 34 h APF, at least 10 h longer than during normal development. After this time point, the regenerative response is diminished, a process mediated in part by the ecdysone-responsive transcription factor E93.


Apoptosis , Cell Proliferation , Drosophila Proteins , Drosophila melanogaster , Pupa , Regeneration , Transcription Factors , Wings, Animal , Animals , Wings, Animal/growth & development , Wings, Animal/physiology , Drosophila melanogaster/physiology , Drosophila melanogaster/growth & development , Pupa/growth & development , Pupa/physiology , Drosophila Proteins/metabolism , Drosophila Proteins/genetics , Regeneration/physiology
17.
Article Zh | MEDLINE | ID: mdl-38664023

Wound regeneration and repair is one of the primary research fields in burn and wound repair surgery. In recent years, with the continuous advancement of treatment concept and technologies in the field of rehabilitation, the connection between rehabilitation treatment and wound regeneration and repair has become closer, forming a new concept "regenerative rehabilitation". This article discussed the concept formation and development status of regenerative rehabilitation, and the future development and potential leading value of regenerative rehabilitation field.


Regeneration , Wound Healing , Humans , Regeneration/physiology , Burns/rehabilitation , Regenerative Medicine/methods , Regenerative Medicine/trends
18.
Medicina (Kaunas) ; 60(4)2024 Apr 21.
Article En | MEDLINE | ID: mdl-38674316

Background and Objectives: This three-year clinical trial aimed to demonstrate that only the signaling vesicles produced by ADSCa, containing mRNA, microRNA, growth factors (GFs), and bioactive peptides, provide an advantage over classical therapy with adipose disaggregate to make the tissue regeneration technique safer due to the absence of interfering materials and cells, while being extremely minimally invasive. The infiltration of disaggregated adipose nanofat, defined by the Tonnard method, for the regeneration of the dermis and epidermis during physiological or pathological aging continues to be successfully used for the presence of numerous adult stem cells in suspension (ADSCa). An improvement in this method is the exclusion of fibrous shots and cellular debris from the nanofat to avoid inflammatory phenomena by microfiltration. Materials and Methods: A small amount of adipose tissue was extracted after surface anesthesia and disaggregated according to the Tonnard method. An initial microfiltration at 20/40 microns was performed to remove fibrous shots and cellular debris. The microfiltration was stabilized with a sterile solution containing hyaluronic acid and immediately ultrafiltered to a final size of 0.20 microns to exclude the cellular component and hyaluronic acid chains of different molecular weights. The suspension was then injected into the dermis using a mesotherapy technique with microinjections. Results: This study found that it is possible to extract signaling microvesicles using a simple ultrafiltration system. The Berardesca Scale, Numeric Rating Scale (NRS), and Modified Vancouver Scale (MVS) showed that it is possible to obtain excellent results with this technique. The ultrafiltrate can validly be used in a therapy involving injection into target tissues affected by chronic and photoaging with excellent results. Conclusions: This retrospective clinical evaluation study allowed us to consider the results obtained with this method for the treatment of dermal wrinkles and facial tissue furrows as excellent. The method is safe and an innovative regenerative therapy as a powerful and viable alternative to skin regeneration therapies, antiaging therapies, and chronic inflammatory diseases because it lacks the inflammatory component produced by cellular debris and fibrous sprouts and because it can exclude the mesenchymal cellular component by reducing multiple inflammatory cytokine levels.


Adipose Tissue , Exosomes , Regeneration , Humans , Regeneration/physiology , Female , Middle Aged , Adult , Skin Aging/physiology , Male
19.
Medicina (Kaunas) ; 60(4)2024 Apr 21.
Article En | MEDLINE | ID: mdl-38674321

Background and Objectives: Pelvic floor muscles (PFM) play a core role in defecation and micturition. Weakening of PFM underlies urogynecological disorders such as pelvic organ prolapse and stress urinary incontinence. Vaginal delivery damages PFM. Muscle trauma implies an inflammatory response mediated by myeloid cells, essential for subsequent recovery. Molecular signaling characterizing the pro-inflammatory phase shifts M1 macrophages to M2 macrophages, which modulate muscle repair. The present study aimed to evaluate histological characteristics and the presence of M1 and M2 macrophages in bulbospongiosus (Bsm) and pubococcygeus muscles (Pcm). Materials and Methods: Muscles from young nulliparous (N) and multiparous rabbits on postpartum days three (M3) and twenty (M20) were excised and histologically processed to measure the myofiber cross-sectional area (CSA) and count the centralized myonuclei in hematoxylin-eosinstained sections. Using immunohistochemistry, M1 and M2 macrophages were estimated in muscle sections. Kruskal-Wallis or one-way ANOVA testing, followed by post hoc tests, were conducted to identify significant differences (p < 0.05). Results: The myofiber CSA of both the Bsm and Pcm of the M3 group were more extensive than those of the N and M20 groups. Centralized myonuclei estimated in sections from both muscles of M20 rabbits were higher than those of N rabbits. Such histological outcomes matched significant increases in HLA-DR immunostaining in M3 rabbits with the CD206 immunostaining in muscle sections from M20 rabbits. Conclusions: A shift from the pro- to anti-inflammatory phase in the bulbospongiosus and pubococcygeus muscles of multiparous rabbits matches with centralized myonuclei, suggesting the ongoing regeneration of muscles.


Pelvic Floor , Postpartum Period , Regeneration , Animals , Rabbits , Pelvic Floor/physiopathology , Pelvic Floor/physiology , Female , Regeneration/physiology , Postpartum Period/physiology , Macrophages/physiology , Macrophages/immunology , Inflammation , Immunohistochemistry/methods , Parity/physiology , Pregnancy , Muscle, Skeletal/physiopathology , Muscle, Skeletal/physiology
20.
FASEB J ; 38(8): e23612, 2024 Apr 30.
Article En | MEDLINE | ID: mdl-38648494

Considerable progress has been made in understanding the function of alveolar epithelial cells in a quiescent state and regeneration mechanism after lung injury. Lung injury occurs commonly from severe viral and bacterial infections, inhalation lung injury, and indirect injury sepsis. A series of pathological mechanisms caused by excessive injury, such as apoptosis, autophagy, senescence, and ferroptosis, have been studied. Recovery from lung injury requires the integrity of the alveolar epithelial cell barrier and the realization of gas exchange function. Regeneration mechanisms include the participation of epithelial progenitor cells and various niche cells involving several signaling pathways and proteins. While alveoli are damaged, alveolar type II (AT2) cells proliferate and differentiate into alveolar type I (AT1) cells to repair the damaged alveolar epithelial layer. Alveolar epithelial cells are surrounded by various cells, such as fibroblasts, endothelial cells, and various immune cells, which affect the proliferation and differentiation of AT2 cells through paracrine during alveolar regeneration. Besides, airway epithelial cells also contribute to the repair and regeneration process of alveolar epithelium. In this review, we mainly discuss the participation of epithelial progenitor cells and various niche cells involving several signaling pathways and transcription factors.


Alveolar Epithelial Cells , Lung Injury , Regeneration , Humans , Regeneration/physiology , Animals , Lung Injury/metabolism , Lung Injury/pathology , Alveolar Epithelial Cells/metabolism , Alveolar Epithelial Cells/pathology , Stem Cells/metabolism , Stem Cells/physiology , Pulmonary Alveoli/pathology , Pulmonary Alveoli/metabolism , Signal Transduction , Cell Differentiation
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