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1.
Development ; 149(12)2022 06 15.
Artigo em Inglês | MEDLINE | ID: mdl-35708609

RESUMO

It is well established that humans and other mammals are minimally regenerative compared with organisms such as zebrafish, salamander or amphibians. In recent years, however, the identification of regenerative potential in neonatal mouse tissues that normally heal poorly in adults has transformed our understanding of regenerative capacity in mammals. In this Review, we survey the mammalian tissues for which regenerative or improved neonatal healing has been established, including the heart, cochlear hair cells, the brain and spinal cord, and dense connective tissues. We also highlight common and/or tissue-specific mechanisms of neonatal regeneration, which involve cells, signaling pathways, extracellular matrix, immune cells and other factors. The identification of such common features across neonatal tissues may direct therapeutic strategies that will be broadly applicable to multiple adult tissues.


Assuntos
Coração , Peixe-Zebra , Anfíbios , Animais , Mamíferos , Camundongos , Medula Espinal
2.
Dev Biol ; 470: 108-120, 2021 02.
Artigo em Inglês | MEDLINE | ID: mdl-33248111

RESUMO

Growth of the musculoskeletal system requires precise coordination between bone, muscle, and tendon during development. Insufficient elongation of the muscle-tendon unit relative to bone growth results in joint contracture, a condition characterized by reduction or complete loss of joint range of motion. Here we establish a novel murine model of joint contracture by targeting Smad4 for deletion in the tendon cell lineage using Scleraxis-Cre (ScxCre). Smad4ScxCre mutants develop a joint contracture shortly after birth. The contracture is stochastic in direction and increases in severity with age. Smad4ScxCre mutant tendons exhibited a stable reduction in cellularity and a progressive reduction in extracellular matrix volume. Collagen fibril diameters were reduced in the Smad4ScxCre mutants, suggesting a role for Smad4 signaling in the regulation of matrix accumulation. Although ScxCre also has sporadic activity in both cartilage and muscle, we demonstrate an essential role for Smad4 loss in tendons for the development of joint contractures. Disrupting the canonical TGFß-pathway in Smad2;3ScxCre mutants did not result in joint contractures. Conversely, disrupting the BMP pathway by targeting BMP receptors (Alk3ScxCre/Alk6null) recapitulated many features of the Smad4ScxCre contracture phenotype, suggesting that joint contracture in Smad4ScxCre mutants is caused by disruption of BMP signaling. Overall, these results establish a model of murine postnatal joint contracture and a role for BMP signaling in tendon elongation and extracellular matrix accumulation.


Assuntos
Contratura/metabolismo , Contratura/patologia , Proteína Smad4/metabolismo , Tendões/crescimento & desenvolvimento , Animais , Desenvolvimento Ósseo , Proteínas Morfogenéticas Ósseas/metabolismo , Cartilagem/crescimento & desenvolvimento , Cartilagem/metabolismo , Linhagem da Célula , Colágeno/metabolismo , Matriz Extracelular/metabolismo , Membro Anterior , Camundongos , Músculo Esquelético/metabolismo , Transdução de Sinais , Proteína Smad4/genética , Tendões/citologia , Tendões/embriologia , Tendões/metabolismo , Fator de Crescimento Transformador beta/metabolismo
3.
Development ; 146(20)2019 10 04.
Artigo em Inglês | MEDLINE | ID: mdl-31540914

RESUMO

The transcription factor scleraxis (Scx) is required for tendon development; however, the function of Scx is not fully understood. Although Scx is expressed by all tendon progenitors and cells, only long tendons are disrupted in the Scx-/- mutant; short tendons appear normal and the ability of muscle to attach to skeleton is not affected. We recently demonstrated that long tendons are formed in two stages: first, by muscle anchoring to skeleton via a short tendon anlage; and second, by rapid elongation of the tendon in parallel with skeletal growth. Through lineage tracing, we extend these observations to all long tendons and show that tendon elongation is fueled by recruitment of new mesenchymal progenitors. Conditional loss of Scx in mesenchymal progenitors did not affect the first stage of anchoring; however, new cells were not recruited during elongation and long tendon formation was impaired. Interestingly, for tenocyte recruitment, Scx expression was required only in the recruited cells and not in the recruiting tendon. The phenotype of Scx mutants can thus be understood as a failure of tendon cell recruitment during tendon elongation.


Assuntos
Fatores de Transcrição Hélice-Alça-Hélice Básicos/metabolismo , Tendões/citologia , Tendões/metabolismo , Animais , Fatores de Transcrição Hélice-Alça-Hélice Básicos/genética , Diferenciação Celular/genética , Diferenciação Celular/fisiologia , Movimento Celular/genética , Movimento Celular/fisiologia , Camundongos , Fatores de Transcrição SOX9/genética , Fatores de Transcrição SOX9/metabolismo , Células-Tronco/citologia , Células-Tronco/metabolismo
4.
FASEB J ; 35(6): e21618, 2021 06.
Artigo em Inglês | MEDLINE | ID: mdl-33982337

RESUMO

Tendons are dense connective tissues that transmit muscle forces to the skeleton. After adult injury, healing potential is generally poor and dominated by scar formation. Although the immune response is a key feature of healing, the specific immune cells and signals that drive tendon healing have not been fully defined. In particular, the immune regulators underlying tendon regeneration are almost completely unknown due to a paucity of tendon regeneration models. Using a mouse model of neonatal tendon regeneration, we screened for immune-related markers and identified upregulation of several genes associated with inflammation, macrophage chemotaxis, and TGFß signaling after injury. Depletion of macrophages using AP20187 treatment of MaFIA mice resulted in impaired functional healing, reduced cell proliferation, reduced ScxGFP+ neo-tendon formation, and altered tendon gene expression. Collectively, these results show that inflammation is a key component of neonatal tendon regeneration and demonstrate a requirement for macrophages in effective functional healing.


Assuntos
Proliferação de Células , Inflamação/terapia , Macrófagos/imunologia , Regeneração , Traumatismos dos Tendões/terapia , Tenócitos/citologia , Cicatrização , Animais , Animais Recém-Nascidos , Modelos Animais de Doenças , Feminino , Inflamação/imunologia , Inflamação/patologia , Masculino , Camundongos , Traumatismos dos Tendões/imunologia , Traumatismos dos Tendões/patologia , Tenócitos/fisiologia
5.
J Shoulder Elbow Surg ; 31(11): 2366-2380, 2022 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-35671924

RESUMO

BACKGROUND: High rates of structural failure are reported after rotator cuff repairs due to inability to recreate the native enthesis during healing. The development of biological augmentation methods that mitigate scar formation and regenerate the enthesis is still an unmet need. Since neonatal enthesis is capable of regeneration after injury, this study tested whether delivery of neonatal tendon progenitor cells (TPCs) into the adult injured environment can enhance functional and structural supraspinatus enthesis and tendon healing. METHODS: TPCs were isolated from Ai14 Rosa26-TdTomato mouse Achilles tendons and labeled using adenovirus-Cre. Fifty-two CB57BL/6J mice underwent detachment and acute repair of the supraspinatus tendon and received either a fibrin-only or TPC-fibrin gel. Immunofluorescence analysis was carried out to determine cellularity (DAPI), fibrocartilage (SOX9), macrophages (F4/80), myofibroblasts (α-smooth muscle actin), and scar (laminin). Assays for function (gait and biomechanical testing) and structure (micro-computed tomography imaging, picrosirius red/Alcian Blue staining, type I and III collagen staining) were carried out. RESULTS: Analysis of TdTomato cells after injury showed minimal retention of TPCs by day 7 and day 14, with detected cells localized near the bursa and deltoid rather than the enthesis/tendon. However, TPC delivery led to significantly increased %Sox9+ cells in the enthesis at day 7 after injury and decreased laminin intensity across almost all time points compared to fibrin-only treatment. Similarly, TPC-treated mice showed gait recovery by day 14 (paw area and stride length) and day 28 (stance time), while fibrin-treated mice failed to recover gait parameters. Despite improved gait, biomechanical testing showed no differences between groups. Structural analysis by micro-computed tomography suggests that TPC application improves cortical thickness after surgery compared to fibrin. Superior collagen alignment at the neo-enthesis was also observed in the TPC-augmented group at day 28, but no difference was detected in type I and III collagen intensity. CONCLUSION: We found that neonatal TPCs improved and restored functional gait by reducing overall scar formation, improving enthesis collagen alignment, and altering bony composition response after supraspinatus tendon repair. TPCs did not appear to integrate into the healing tissue, suggesting improved healing may be due to paracrine effects at early stages. Future work will determine the factors secreted by TPCs to develop translational targets.


Assuntos
Lesões do Manguito Rotador , Manguito Rotador , Camundongos , Animais , Manguito Rotador/cirurgia , Cicatriz/prevenção & controle , Cicatriz/patologia , Laminina , Microtomografia por Raio-X , Actinas , Azul Alciano , Tendões/cirurgia , Colágeno , Marcha , Células-Tronco , Fibrina , Fenômenos Biomecânicos
6.
FASEB J ; 32(9): 4753-4762, 2018 09.
Artigo em Inglês | MEDLINE | ID: mdl-29570392

RESUMO

Adult intervertebral discs (IVDs) have poor endogenous healing capacity, because of their challenging microenvironment and complex mechanical demands, which can result in painful IVD herniation. There are no regenerative strategies available to improve IVD healing and restore its function. Neonatal mice are excellent models of mammalian regeneration, but there are no studies of the regenerative capacity of neonatal IVDs. In this study, we developed a neonatal model of improved IVD healing to inform repair strategies after herniation. In vivo puncture injuries were performed to simulate herniation with complete annulus fibrosus (AF) tears in caudal IVDs of neonatal (postnatal d 5) and adult (4-6 mo) Scleraxis green fluorescent protein ( ScxGFP) mice. Acute and long-term healing responses were assessed with histologic, radiologic, and biomechanical measurements. Neonates underwent accelerated IVD healing compared to adults with functional restoration and enhanced structural repair after herniation. A population of ScxGFP- cells identified in the neonatal repair site may be associated with this improved healing and warrants future investigation. In summary, function of neonatal IVDs was restored after herniation injury, whereas that of adult discs was not. This improved healing response is likely driven by multiple mechanisms that may include differences in mechanical loading and available repair cells during growth.-Torre, O. M., Das, R., Berenblum, R. E., Huang, A. H., Iatridis, J. C. Neonatal mouse intervertebral discs heal with restored function following herniation injury.


Assuntos
Fenômenos Biomecânicos/fisiologia , Degeneração do Disco Intervertebral/metabolismo , Disco Intervertebral/lesões , Cicatrização/fisiologia , Animais , Animais Recém-Nascidos , Modelos Animais de Doenças , Disco Intervertebral/metabolismo , Degeneração do Disco Intervertebral/patologia , Camundongos Transgênicos
7.
Dev Biol ; 429(2): 420-428, 2017 09 15.
Artigo em Inglês | MEDLINE | ID: mdl-28363737

RESUMO

Functional movement and stability of the limb depends on an organized and fully integrated musculoskeletal system composed of skeleton, muscle, and tendon. Much of our current understanding of musculoskeletal development is based on studies that focused on the development and differentiation of individual tissues. Likewise, research on patterning events have been largely limited to the primary skeletal elements and the mechanisms that regulate soft tissue patterning, the development of the connections between tissues, and their interdependent development are only beginning to be elucidated. This review will therefore highlight recent exciting discoveries in this field, with an emphasis on tendon and muscle patterning and their integrated development with the skeleton and skeletal attachments.


Assuntos
Padronização Corporal , Osso e Ossos/embriologia , Extremidades/embriologia , Músculo Esquelético/embriologia , Tendões/embriologia , Animais , Fatores de Transcrição/metabolismo
8.
Development ; 142(14): 2431-41, 2015 Jul 15.
Artigo em Inglês | MEDLINE | ID: mdl-26062940

RESUMO

The long tendons of the limb extend from muscles that reside in the zeugopod (arm/leg) to their skeletal insertions in the autopod (paw). How these connections are established along the length of the limb remains unknown. Here, we show that mouse limb tendons are formed in modular units that combine to form a functional contiguous structure; in muscle-less limbs, tendons develop in the autopod but do not extend into the zeugopod, and in the absence of limb cartilage the zeugopod segments of tendons develop despite the absence of tendons in the autopod. Analyses of cell lineage and proliferation indicate that distinct mechanisms govern the growth of autopod and zeugopod tendon segments. To elucidate the integration of these autopod and zeugopod developmental programs, we re-examined early tendon development. At E12.5, muscles extend across the full length of a very short zeugopod and connect through short anlagen of tendon progenitors at the presumptive wrist to their respective autopod tendon segment, thereby initiating musculoskeletal integration. Zeugopod tendon segments are subsequently generated by proximal elongation of the wrist tendon anlagen, in parallel with skeletal growth, underscoring the dependence of zeugopod tendon development on muscles for tendon anchoring. Moreover, a subset of extensor tendons initially form as fused structures due to initial attachment of their respective wrist tendon anlage to multiple muscles. Subsequent individuation of these tendons depends on muscle activity. These results establish an integrated model for limb tendon development that provides a framework for future analyses of tendon and musculoskeletal phenotypes.


Assuntos
Extremidades/embriologia , Regulação da Expressão Gênica no Desenvolvimento , Músculo Esquelético/embriologia , Tendões/embriologia , Animais , Apoptose , Fatores de Transcrição Hélice-Alça-Hélice Básicos/genética , Cartilagem/metabolismo , Diferenciação Celular , Linhagem da Célula , Proliferação de Células , Deleção de Genes , Proteínas de Fluorescência Verde/metabolismo , Articulação Metacarpofalângica/patologia , Camundongos , Microscopia Confocal , Microscopia Eletrônica de Transmissão , Músculo Esquelético/metabolismo , Fenótipo , Fatores de Transcrição SOX9/genética , Tendões/metabolismo
9.
Connect Tissue Res ; 59(4): 295-308, 2018 07.
Artigo em Inglês | MEDLINE | ID: mdl-28937836

RESUMO

PURPOSE: Tendon injuries are clinically challenging due to poor healing. A better understanding of the molecular events that regulate tendon differentiation would improve current strategies for repair. The mouse model system has been instrumental to tendon studies and several key molecules were initially established in mouse. However, the study of gene function has been limited by the absence of a standard in vitro tendon system for efficiently testing multiple mutations, physical manipulations, and mis-expression. The purpose of this study is therefore to establish such a system. METHODS: We adapted an existing design for generating three-dimensional (3D) tendon constructs for use with mouse progenitor cells harboring the ScxGFP tendon reporter and the Rosa26-TdTomato Cre reporter. Using these cells, we optimized the parameters for construct formation, inducing tenogenesis via transforming growth factor-ß2 (TGFß2), and genetic recombination via an adenovirus encoding Cre recombinase. Finally, for proof of concept, we used Smad4 floxed cells and tested the robustness of the system for gene knockdown. RESULTS: We found that TGFß2 treatment induced a tenogenic phenotype depending on the timing of initiation. Addition of TGFß2 after 3D "tensioning" enhanced tendon differentiation. Interestingly, while TGFß2-induced proliferation depended on Smad4, tenogenic parameters such as ScxGFP expression and fibril diameter were independent of Smad4. CONCLUSIONS: Our results demonstrate the feasibility of this optimized system for harnessing the power of mouse genetics for in vitro applications.


Assuntos
Imageamento Tridimensional , Modelos Biológicos , Organogênese , Tendões/crescimento & desenvolvimento , Adenoviridae/metabolismo , Animais , Contagem de Células , Diferenciação Celular/efeitos dos fármacos , Proliferação de Células/efeitos dos fármacos , Células Cultivadas , Colágeno/metabolismo , Fibroblastos/citologia , Fibroblastos/efeitos dos fármacos , Fibroblastos/metabolismo , Deleção de Genes , Proteínas de Fluorescência Verde/metabolismo , Integrases/metabolismo , Camundongos , Mutação/genética , Fenótipo , Proteoglicanas/metabolismo , Reprodutibilidade dos Testes , Proteína Smad4/metabolismo , Tendões/citologia , Tendões/ultraestrutura , Fator de Crescimento Transformador beta2/farmacologia
11.
Adv Healthc Mater ; : e2400529, 2024 Mar 05.
Artigo em Inglês | MEDLINE | ID: mdl-38441411

RESUMO

Effective tendon regeneration following injury is contingent on appropriate differentiation of recruited cells and deposition of mature, aligned, collagenous extracellular matrix that can withstand the extreme mechanical demands placed on the tissue. As such, myriad biomaterial approaches have been explored to provide biochemical and physical cues that encourage tenogenesis and template aligned matrix deposition in lieu of dysfunctional scar tissue formation. Fiber-reinforced hydrogels present an ideal biomaterial system toward this end given their transdermal injectability, tunable stiffness over a range amenable to tenogenic differentiation of progenitors, and capacity for modular inclusion of biochemical cues. Here, tunable and modular, fiber-reinforced, synthetic hydrogels are employed to elucidate salient microenvironmental determinants of tenogenesis and aligned collagen deposition by tendon progenitor cells. Transforming growth factor ß3 drives a cell fate switch toward pro-regenerative or pro-fibrotic phenotypes, which can be biased toward the former by culture in softer microenvironments or inhibition of the RhoA/ROCK activity. Furthermore, studies demonstrate that topographical anisotropy in fiber-reinforced hydrogels critically mediates the alignment of de novo collagen fibrils, reflecting native tendon architecture. These findings inform the design of cell-free, injectable, synthetic hydrogels for tendon tissue regeneration and, likely, that of a range of load-bearing connective tissues.

12.
J Orthop Res ; 41(10): 2082-2092, 2023 10.
Artigo em Inglês | MEDLINE | ID: mdl-37211925

RESUMO

The tendon field has been flourishing in recent years with the advent of new tools and model systems. The recent ORS 2022 Tendon Section Conference brought together researchers from diverse disciplines and backgrounds, showcasing studies in biomechanics and tissue engineering to cell and developmental biology and using models from zebrafish and mouse to humans. This perspective aims to summarize progress in tendon research as it pertains to understanding and studying tendon cell fate. The successful integration of new technologies and approaches have the potential to further propel tendon research into a new renaissance of discovery. However, there are also limitations with the current methodologies that are important to consider when tackling research questions. Altogether, we will highlight recent advances and technologies and propose new avenues to explore tendon biology.


Assuntos
Tendões , Peixe-Zebra , Humanos , Animais , Camundongos , Diferenciação Celular , Engenharia Tecidual/métodos , Fenômenos Biomecânicos
13.
J Orthop Res ; 41(10): 2133-2162, 2023 10.
Artigo em Inglês | MEDLINE | ID: mdl-37573480

RESUMO

Several tendon and ligament animal models were presented at the 2022 Orthopaedic Research Society Tendon Section Conference held at the University of Pennsylvania, May 5 to 7, 2022. A key objective of the breakout sessions at this meeting was to develop guidelines for the field, including for preclinical tendon and ligament animal models. This review summarizes the perspectives of experts for eight surgical small and large animal models of rotator cuff tear, flexor tendon transection, anterior cruciate ligament tear, and Achilles tendon injury using the framework: "Why, Who, What, Where, When, and How" (5W1H). A notable conclusion is that the perfect tendon model does not exist; there is no single gold standard animal model that represents the totality of tendon and ligament disease. Each model has advantages and disadvantages and should be carefully considered in light of the specific research question. There are also circumstances when an animal model is not the best approach. The wide variety of tendon and ligament pathologies necessitates choices between small and large animal models, different anatomic sites, and a range of factors associated with each model during the planning phase. Attendees agreed on some guiding principles including: providing clear justification for the model selected, providing animal model details at publication, encouraging sharing of protocols and expertise, improving training of research personnel, and considering greater collaboration with veterinarians. A clear path for translating from animal models to clinical practice was also considered as a critical next step for accelerating progress in the tendon and ligament field.


Assuntos
Lesões do Ligamento Cruzado Anterior , Lesões do Manguito Rotador , Traumatismos dos Tendões , Animais , Tendões , Ligamento Cruzado Anterior/cirurgia
14.
Eur Cell Mater ; 24: 29-45, 2012 Jul 12.
Artigo em Inglês | MEDLINE | ID: mdl-22791371

RESUMO

The primary goal of cartilage tissue engineering is to recapitulate the functional properties and structural features of native articular cartilage. While there has been some success in generating near-native compressive properties, the tensile properties of cell-seeded constructs remain poor, and key features of cartilage, including inhomogeneity and anisotropy, are generally absent in these engineered constructs. Therefore, in an attempt to instill these hallmark properties of cartilage in engineered cell-seeded constructs, we designed and characterized a novel sliding contact bioreactor to recapitulate the mechanical stimuli arising from physiologic joint loading (two contacting cartilage layers). Finite element modeling of this bioreactor system showed that tensile strains were direction-dependent, while both tensile strains and fluid motion were depth-dependent and highest in the region closest to the contact surface. Short-term sliding contact of mesenchymal stem cell (MSC)-seeded agarose improved chondrogenic gene expression in a manner dependent on both the axial strain applied and transforming growth factor-ß supplementation. Using the optimized loading parameters derived from these short-term studies, long-term sliding contact was applied to MSC-seeded agarose constructs for 21 d. After 21 d, sliding contact significantly improved the tensile properties of MSC-seeded constructs and elicited alterations in type II collagen and proteoglycan accumulation as a function of depth; staining for these matrix molecules showed intense localization in the surface regions. These findings point to the potential of sliding contact to produce engineered cartilage constructs that begin to recapitulate the complex mechanical features of the native tissue.


Assuntos
Células-Tronco Mesenquimais/metabolismo , Engenharia Tecidual/métodos , Agrecanas/biossíntese , Agrecanas/genética , Animais , Anisotropia , Reatores Biológicos , Cartilagem Articular/fisiologia , Bovinos , Células Cultivadas , Colágeno Tipo I/biossíntese , Colágeno Tipo I/genética , Expressão Gênica , Hidrogéis , Células-Tronco Mesenquimais/citologia , Células-Tronco Mesenquimais/efeitos dos fármacos , Proteoglicanas/biossíntese , Proteoglicanas/genética , Sefarose/química , Estresse Mecânico , Resistência à Tração , Fator de Crescimento Transformador beta/farmacologia
15.
Front Bioeng Biotechnol ; 9: 719047, 2021.
Artigo em Inglês | MEDLINE | ID: mdl-34350166

RESUMO

Tendon injuries are common and debilitating, with non-regenerative healing often resulting in chronic disease. While there has been considerable progress in identifying the cellular and molecular regulators of tendon healing, the role of inflammation in tendon healing is less well understood. While inflammation underlies chronic tendinopathy, it also aids debris clearance and signals tissue repair. Here, we highlight recent findings in this area, focusing on the cells and cytokines involved in reparative inflammation. We also discuss findings from other model systems when research in tendon is minimal, and explore recent studies in the treatment of human tendinopathy to glean further insights into the immunobiology of tendon healing.

16.
Nat Commun ; 12(1): 4208, 2021 07 09.
Artigo em Inglês | MEDLINE | ID: mdl-34244516

RESUMO

The transcriptional regulators underlying induction and differentiation of dense connective tissues such as tendon and related fibrocartilaginous tissues (meniscus and annulus fibrosus) remain largely unknown. Using an iterative approach informed by developmental cues and single cell RNA sequencing (scRNA-seq), we establish directed differentiation models to generate tendon and fibrocartilage cells from mouse embryonic stem cells (mESCs) by activation of TGFß and hedgehog pathways, achieving 90% induction efficiency. Transcriptional signatures of the mESC-derived cells recapitulate embryonic tendon and fibrocartilage signatures from the mouse tail. scRNA-seq further identify retinoic acid signaling as a critical regulator of cell fate switch between TGFß-induced tendon and fibrocartilage lineages. Trajectory analysis by RNA sequencing define transcriptional modules underlying tendon and fibrocartilage fate induction and identify molecules associated with lineage-specific differentiation. Finally, we successfully generate 3-dimensional engineered tissues using these differentiation protocols and show activation of mechanotransduction markers with dynamic tensile loading. These findings provide a serum-free approach to generate tendon and fibrocartilage cells and tissues at high efficiency for modeling development and disease.


Assuntos
Fibrocartilagem/crescimento & desenvolvimento , Células-Tronco Embrionárias Murinas/fisiologia , Tendões/crescimento & desenvolvimento , Engenharia Tecidual/métodos , Ativação Transcricional , Animais , Diferenciação Celular/genética , Embrião de Mamíferos , Fibrocartilagem/citologia , Regulação da Expressão Gênica no Desenvolvimento , Proteínas Hedgehog/metabolismo , Mecanotransdução Celular/genética , Camundongos , RNA-Seq , Transdução de Sinais/genética , Análise de Célula Única , Tendões/citologia , Fator de Crescimento Transformador beta/metabolismo , Tretinoína/metabolismo
17.
J Orthop Res ; 39(11): 2310-2322, 2021 11.
Artigo em Inglês | MEDLINE | ID: mdl-34553789

RESUMO

Rotator cuff (RC) tendon tears are common shoulder injuries that result in irreversible and persistent degeneration of the associated muscles, which is characterized by severe inflammation, atrophy, fibrosis, and fatty infiltration. Although RC muscle degeneration strongly dictates the overall clinical outcomes, strategies to stimulate RC muscle regeneration have largely been overlooked to date. In this review, we highlight the current understanding of the cellular processes that coordinate muscle regeneration, and the roles of muscle resident cells, including immune cells, fibroadipogenic progenitors, and muscle satellite cells in the pathophysiologic regulation of RC muscles following injury. This review also provides perspectives for potential therapies to alleviate the hallmarks of RC muscle degeneration to address current limitations in postsurgical recovery.


Assuntos
Lesões do Manguito Rotador , Manguito Rotador , Tecido Adiposo/patologia , Fibrose , Humanos , Atrofia Muscular/patologia , Manguito Rotador/patologia , Lesões do Manguito Rotador/patologia , Tendões
18.
J Orthop Res ; 39(8): 1789-1799, 2021 08.
Artigo em Inglês | MEDLINE | ID: mdl-32497311

RESUMO

Rotator cuff supraspinatus tendon injuries are common with high rates of anatomic failure after surgical repair. The purpose of the study was to define clinically relevant features of a mouse model of supraspinatus tendon injury to determine painful, functional, and structural outcomes; we further investigated two cell populations mediating healing using genetic lineage tracing after full detachment and repair of the supraspinatus tendon in mice. The pain was assessed using the mouse grimace scale and function by gait analysis and tensile testing. Histological and microCT analyses were used to determine enthesis/tendon and bone structure, respectively. Lineage tracing was carried out using inducible Cre lines for ScxCreERT2 (tendon cells) and αSMACreERT2 (myofibroblasts and mesenchymal progenitors). Mice only expressed pain transiently after surgery despite long-term impairment of functional and structural properties. Gait, tensile mechanical properties, and bone properties were significantly reduced after injury and repair. Lineage tracing showed relatively few Scx lin tendon cells while αSMA lin cells contributed strongly to scar formation. Despite surgical reattachment of healthy tendon, lineage tracing revealed poor preservation of supraspinatus tendon after acute injury and loss of tendon structure, suggesting that tendon degeneration is also a key impediment of successful rotator cuff repair. Scar formation after surgery is mediated largely by αSMA lin cells and results in permanently reduced functional and structural properties.


Assuntos
Lesões do Manguito Rotador , Manguito Rotador , Animais , Fenômenos Biomecânicos , Linhagem da Célula , Cicatriz , Modelos Animais de Doenças , Camundongos , Dor , Manguito Rotador/patologia , Lesões do Manguito Rotador/patologia , Tendões/patologia , Cicatrização/fisiologia
19.
Eur Cell Mater ; 19: 72-85, 2010 Feb 26.
Artigo em Inglês | MEDLINE | ID: mdl-20186667

RESUMO

Mesenchymal stem cells (MSCs) are an attractive cell source for cartilage tissue engineering given their ability to undergo chondrogenesis in 3D culture systems. Mechanical forces play an important role in regulating both cartilage development and MSC chondrogenic gene expression, however, mechanical stimulation has yet to enhance the mechanical properties of engineered constructs. In this study, we applied long-term dynamic compression to MSC-seeded constructs and assessed whether varying pre-culture duration, loading regimens and inclusion of TGF-beta3 during loading would influence functional outcomes and these phenotypic transitions. Loading initiated before chondrogenesis decreased functional maturation, although chondrogenic gene expression increased. In contrast, loading initiated after chondrogenesis and matrix elaboration further improved the mechanical properties of MSC-based constructs, but only when TGF-beta3 levels were maintained and under specific loading parameters. Although matrix quantity was not affected by dynamic compression, matrix distribution, assessed histologically and by FT-IRIS analysis, was significantly improved on the micro- (pericellular) and macro- (construct expanse) scales. Further, whole genome expression profiling revealed marked shifts in the molecular topography with dynamic loading. These results demonstrate, for the first time, that dynamic compressive loading initiated after a sufficient period of chondro-induction and with sustained TGF-beta exposure enhances matrix distribution and the mechanical properties of MSC-seeded constructs.


Assuntos
Cartilagem/fisiologia , Cartilagem/cirurgia , Condrócitos/transplante , Hidrogel de Polietilenoglicol-Dimetacrilato/química , Transplante de Células-Tronco Mesenquimais/métodos , Engenharia Tecidual/métodos , Alicerces Teciduais/tendências , Animais , Fenômenos Biomecânicos , Cartilagem/citologia , Bovinos , Células Cultivadas , Condrócitos/efeitos dos fármacos , Condrócitos/fisiologia , Matriz Extracelular/química , Matriz Extracelular/fisiologia , Proteínas da Matriz Extracelular/genética , Proteínas da Matriz Extracelular/metabolismo , Regeneração Tecidual Guiada/métodos , Hidrogel de Polietilenoglicol-Dimetacrilato/uso terapêutico , Células-Tronco Mesenquimais/citologia , Células-Tronco Mesenquimais/fisiologia , Fatores de Tempo , Fator de Crescimento Transformador beta3/farmacologia , Suporte de Carga/fisiologia
20.
Elife ; 92020 06 05.
Artigo em Inglês | MEDLINE | ID: mdl-32501213

RESUMO

Tendon injuries are common with poor healing potential. The paucity of therapies for tendon injuries is due to our limited understanding of the cells and molecular pathways that drive tendon regeneration. Using a mouse model of neonatal tendon regeneration, we identified TGFß signaling as a major molecular pathway that drives neonatal tendon regeneration. Through targeted gene deletion, small molecule inhibition, and lineage tracing, we elucidated TGFß-dependent and TGFß-independent mechanisms underlying tendon regeneration. Importantly, functional recovery depended on canonical TGFß signaling and loss of function is due to impaired tenogenic cell recruitment from both Scleraxis-lineage and non-Scleraxis-lineage sources. We show that TGFß signaling is directly required in neonatal tenocytes for recruitment and that TGFß ligand is positively regulated in tendons. Collectively, these results show a functional role for canonical TGFß signaling in tendon regeneration and offer new insights toward the divergent cellular activities that distinguish regenerative vs fibrotic healing.


Assuntos
Transdução de Sinais , Traumatismos dos Tendões/metabolismo , Tenócitos/metabolismo , Fator de Crescimento Transformador beta/metabolismo , Cicatrização , Animais , Animais Recém-Nascidos , Fatores de Transcrição Hélice-Alça-Hélice Básicos/metabolismo , Movimento Celular , Feminino , Masculino , Camundongos , Fator de Crescimento Transformador beta/antagonistas & inibidores , Fator de Crescimento Transformador beta/genética
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