Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 17 de 17
Filter
Add more filters










Publication year range
1.
APL Bioeng ; 8(2): 026119, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38855444

ABSTRACT

Senescent cell accumulation in the pulmonary niche is associated with heightened susceptibility to age-related disease, tissue alterations, and ultimately a decline in lung function. Our current knowledge of senescent cell-extracellular matrix (ECM) dynamics is limited, and our understanding of how senescent cells influence spatial ECM architecture changes over time is incomplete. Herein is the design of an in vitro model of senescence-associated extracellular matrix (SA-ECM) remodeling using a senescent lung fibroblast-derived matrix that captures the spatiotemporal dynamics of an evolving senescent ECM architecture. Multiphoton second-harmonic generation microscopy was utilized to examine the spatial and temporal dynamics of fibroblast SA-ECM remodeling, which revealed a biphasic process that established a disordered and heterogeneous architecture. Additionally, we observed that inhibition of transforming growth factor-ß signaling during SA-ECM remodeling led to improved local collagen fiber organization. Finally, we examined patient samples diagnosed with pulmonary fibrosis to further tie our results of the in vitro model to clinical outcomes. Moreover, we observed that the senescence marker p16 is correlated with local collagen fiber disorder. By elucidating the temporal dynamics of SA-ECM remodeling, we provide further insight on the role of senescent cells and their contributions to pathological ECM remodeling.

2.
Sci Rep ; 13(1): 19232, 2023 11 06.
Article in English | MEDLINE | ID: mdl-37932310

ABSTRACT

More than 75% of epithelial ovarian cancer (EOC) patients experience disease recurrence after initial treatment, highlighting our incomplete understanding of how chemoresistant populations evolve over the course of EOC progression post chemotherapy treatment. Here, we show how two paclitaxel (PTX) treatment methods- a single high dose and a weekly metronomic dose for four weeks, generate unique chemoresistant populations. Using mechanically relevant alginate microspheres and a combination of transcript profiling and heterogeneity analyses, we found that these PTX-treatment regimens produce distinct and resilient subpopulations that differ in metabolic reprogramming signatures, acquisition of resistance to PTX and anoikis, and the enrichment for cancer stem cells (CSCs) and polyploid giant cancer cells (PGCCs) with the ability to replenish bulk populations. We investigated the longevity of these metabolic reprogramming events using untargeted metabolomics and found that metabolites associated with stemness and therapy-induced senescence were uniquely abundant in populations enriched for CSCs and PGCCs. Predictive network analysis revealed that antioxidative mechanisms were likely to be differentially active dependent on both time and exposure to PTX. Our results illustrate how current standard chemotherapies contribute to the development of chemoresistant EOC subpopulations by either selecting for intrinsically resistant subpopulations or promoting the evolution of resistance mechanisms. Additionally, our work describes the unique phenotypic signatures in each of these distinct resistant subpopulations and thus highlights potential vulnerabilities that can be exploited for more effective treatment.


Subject(s)
Ovarian Neoplasms , Paclitaxel , Female , Humans , Paclitaxel/pharmacology , Ovarian Neoplasms/metabolism , Drug Resistance, Neoplasm , Neoplasm Recurrence, Local , Carcinoma, Ovarian Epithelial , Cell Line, Tumor
3.
Cancers (Basel) ; 15(12)2023 Jun 14.
Article in English | MEDLINE | ID: mdl-37370796

ABSTRACT

Metastatic progression of epithelial ovarian cancer (EOC) involves the partial epithelial-to-mesenchymal transition (EMT) of cancer cells in the primary tumor and dissemination into peritoneal fluid. In part to the high degree of heterogeneity in EOC cells, the identification of EMT in highly epithelial cells in response to differences in matrix mechanics, growth factor signaling, and tissue hypoxia is very difficult. We analyzed different degrees of EMT by tracking changes in cell and nuclear morphology, along with the organization of cytoskeletal proteins. In our analysis, we see a small percentage of individual cells that show dramatic response to TGF-ß1 and hypoxia treatment. We demonstrate that EOC cells are spatially aware of their surroundings, with a subpopulation of EOC cells at the periphery of a cell cluster in 2D environments exhibited a greater degree of EMT. These peripheral cancer cells underwent partial EMT, displaying a hybrid of mesenchymal and epithelial characteristics, which often included less cortical actin and more perinuclear cytokeratin expression. Collectively, these data show that tumor-promoting microenvironment conditions can mediate invasive cell behavior in a spatially regulated context in a small subpopulation of highly epithelial clustered cancer cells that maintain epithelial characteristics while also acquiring some mesenchymal traits through partial EMT.

4.
Aging (Albany NY) ; 15(5): 1237-1256, 2023 02 23.
Article in English | MEDLINE | ID: mdl-36842089

ABSTRACT

Radiation-induced fibrosis is a common side effect of radiotherapy, which is the most common treatment for cancer. However, radiation also causes p53-mediated cell cycle arrest, prolonged expression of p21, and the development of senescence in normal cells that reside in irradiated tissues. Bone marrow-derived mesenchymal stem cells (MSCs) accumulate in primary tumor sites because of their natural tropism for inflammatory and fibrotic tissues. MSCs are extremely sensitive to low doses of ionizing radiation and acquire senescence as a result of bystander radiation effects. Senescent cells remain metabolically active but develop a potent senescence-associated secretory phenotype (SASP) that correlates to hyperactive secretion of cytokines, pro-fibrotic growth factors, and exosomes (EXOs). Integrative pathway analysis highlighted that radiation-induced senescence significantly enriched cell-cycle, extracellular matrix, transforming growth factor-ß (TGF-ß) signaling, and vesicle-mediated transport genes in MSCs. EXOs are cell-secreted nanovesicles (a subclass of small extracellular vesicles) that contain biomaterials-proteins, RNAs, microRNAs (miRNAs)-that are critical in cell-cell communication. miRNA content analysis of secreted EXOs further revealed that radiation-induced senescence uniquely altered miRNA profiles. In fact, several of the standout miRNAs directly targeted TGF-ß or downstream genes. To examine bystander effects of radiation-induced senescence, we further treated normal MSCs with senescence-associated EXOs (SA-EXOs). These modulated genes related to TGF-ß pathway and elevated both alpha smooth muscle actin (protein increased in senescent, activated cells) and Ki-67 (proliferative marker) expression in SA-EXO treated MSCs compared to untreated MSCs. We revealed SA-EXOs possess unique miRNA content that influence myofibroblast phenotypes via TGF-ß pathway activation. This highlights that SA-EXOs are potent SASP factors that play a large role in cancer-related fibrosis.


Subject(s)
Exosomes , Extracellular Vesicles , MicroRNAs , Humans , MicroRNAs/genetics , MicroRNAs/metabolism , Exosomes/metabolism , Extracellular Vesicles/metabolism , Fibrosis , Transforming Growth Factor beta/metabolism
5.
Semin Cancer Biol ; 81: 64-72, 2022 06.
Article in English | MEDLINE | ID: mdl-33992783

ABSTRACT

Polyploid giant cancer cells (PGCCs) are a commonly observed histological feature of human tumors and are particularly prominent in late stage and drug resistant cancers. The chromosomal duplication conferred by their aneuploidy gives rise to DNA damage resistance and complex tumor cell karyotypes, a driving factor in chemotherapy resistance and disease relapse. Furthermore, PGCCs also exhibit key cytoskeletal features that give rise to a distinct biophysical phenotype, including increased density of polymerized actin and vimentin intermediate filaments, nuclear and cytoskeletal stiffening, increased traction force, and migratory persistence. Despite recent research highlighting the role PGCCs play in cancer progression, this population of tumor cells remains poorly characterized in terms of their biophysical properties. In this review, we will discuss the various aspects of their biomolecular phenotype, such as increased stemness as well as a mixed EMT signature. These features have been extensively associated with tumorigenesis and recurrence, and aggressive cancers. Additionally, we will also examine the distinct PGCC cytoskeletal features of actin and filamentous vimentin. Specifically, how the differential organization of these networks serve to support their increased size and drive migratory persistence. These findings could shed light on potential therapeutic strategies that allow for specific elimination or mitigation of the invasive potential of these polyploid cancer cells. Lastly, we will examine how the biophysical and molecular phenotype of PGCCs combine to tip the scale in favor of promoting cancer progression, presenting an important target in the clinical treatment of cancer.


Subject(s)
Actins , Neoplasms , Cell Line, Tumor , Humans , Neoplasms/genetics , Phenotype , Polyploidy , Vimentin
6.
Int Rev Cell Mol Biol ; 360: 1-31, 2021.
Article in English | MEDLINE | ID: mdl-33962748

ABSTRACT

The tumor microenvironment is a complex milieu that dictates the growth, invasion, and metastasis of cancer cells. Both cancer and stromal cells in the tumor tissue encounter and adapt to a variety of extracellular factors, and subsequently contribute and drive the progression of the disease to more advanced stages. As the disease progresses, a small population of cancer cells becomes more invasive through a complex process known as epithelial-mesenchymal transition, and nearby stromal cells assume a carcinoma associated fibroblast phenotype characterized by enhanced migration, cell contractility, and matrix secretion with the ability to reorganize extracellular matrices. As cells transition into more malignant phenotypes their biophysical properties, controlled by the organization of cytoskeletal proteins, are altered. Actin and its associated proteins are essential modulators and facilitators of these changes. As the cells respond to the cues in the microenvironment, actin driven mechanical forces inside and outside the cells also evolve. Recent advances in biophysical techniques have enabled us to probe these actin driven changes in cancer and stromal cells and demarcate their role in driving changes in the microenvironment. Understanding the underlying biophysical mechanisms that drive cancer progression could provide critical insight on novel therapeutic approaches in the fight against cancer.


Subject(s)
Actins/metabolism , Cytoskeleton/metabolism , Neoplasms/pathology , Tumor Microenvironment , Animals , Biomechanical Phenomena , Epithelial-Mesenchymal Transition , Humans , Stromal Cells
7.
Proc Natl Acad Sci U S A ; 117(43): 26756-26765, 2020 10 27.
Article in English | MEDLINE | ID: mdl-33046658

ABSTRACT

Polyploidal giant cancer cells (PGCCs) are multinucleated chemoresistant cancer cells found in heterogeneous solid tumors. Due in part to their apparent dormancy, the effect of PGCCs on cancer progression has remained largely unstudied. Recent studies have highlighted the critical role of PGCCs as aggressive and chemoresistant cancer cells, as well as their ability to undergo amitotic budding to escape dormancy. Our recent study demonstrated the unique biophysical properties of PGCCs, as well as their unusual migratory persistence. Here we unveil the critical function of vimentin intermediate filaments (VIFs) in maintaining the structural integrity of PGCCs and enhancing their migratory persistence. We performed in-depth single-cell analysis to examine the distribution of VIFs and their role in migratory persistence. We found that PGCCs rely heavily on their uniquely distributed and polarized VIF network to enhance their transition from a jammed to an unjammed state to allow for directional migration. Both the inhibition of VIFs with acrylamide and small interfering RNA knockdown of vimentin significantly decreased PGCC migration and resulted in a loss of PGCC volume. Because PGCCs rely on their VIF network to direct migration and to maintain their enlarged morphology, targeting vimentin or vimentin cross-linking proteins could provide a therapeutic approach to mitigate the impact of these chemoresistant cells in cancer progression and to improve patient outcomes with chemotherapy.


Subject(s)
Cell Movement/drug effects , Giant Cells/drug effects , Neoplastic Processes , Polyploidy , Vimentin/pharmacology , Breast Neoplasms/metabolism , Cell Line, Tumor , Drug Resistance, Neoplasm , Epithelial-Mesenchymal Transition/drug effects , Female , Humans , Intermediate Filaments , Single-Cell Analysis
9.
Sci Rep ; 10(1): 8686, 2020 05 26.
Article in English | MEDLINE | ID: mdl-32457479

ABSTRACT

Exosomes are cell-secreted microvesicles that play important roles in epithelial ovarian cancer (EOC) progression, as they are constantly secreted into ascites fluids. While cells spontaneously release exosomes, alterations in intracellular calcium or extracellular pH can release additional exosomes. Yet, little is known about how these exosomes compare to those that are continuously released without stimulation and how they mediate cellular activities important in cancer progression. Here, we demonstrate that chelation of extracellular calcium leads to release of chelation-induced exosomes (CI-exosomes) from OVCAR-3 EOC cells. CI-exosomes display a unique miRNA profile compared to naturally secreted exosomes (SEC-exosomes). Furthermore, treatment with CI- and SEC-exosomes leads to differential biophysical and functional changes including, adhesion and migration in EOC-derived fibroblasts that suggest the development of a malignant tumor microenvironment. This result highlights how tumor environmental factors contribute to heterogeneity in exosome populations and how different exosome populations mediate diversity in stromal cell behavior.


Subject(s)
Cancer-Associated Fibroblasts/metabolism , Exosomes/metabolism , Actins/metabolism , Calcium/chemistry , Cancer-Associated Fibroblasts/cytology , Cancer-Associated Fibroblasts/drug effects , Cell Adhesion , Cell Line, Tumor , Cell Movement , Chelating Agents/chemistry , Chelating Agents/pharmacology , Disease Progression , Exosomes/chemistry , Female , Humans , MicroRNAs/metabolism , Ovarian Neoplasms/metabolism , Ovarian Neoplasms/pathology , Principal Component Analysis , Vinculin/metabolism
10.
J Cell Sci ; 133(2)2020 01 23.
Article in English | MEDLINE | ID: mdl-31932504

ABSTRACT

Mesenchymal stem cells (MSCs) are essential for the regenerative process; however, biological aging and environmental stress can induce senescence - an irreversible state of growth arrest - that not only affects the behavior of cells but also disrupts their ability to restore tissue integrity. While abnormal tissue properties, including increased extracellular matrix stiffness, are linked with the risk of developing breast cancer, the role and contribution of senescent MSCs to the disease progression to malignancy are not well understood. Here, we investigated senescence-associated biophysical changes in MSCs and how this influences cancer cell behavior in a 3D matrix interface model. Although senescent MSCs were far less motile than pre-senescent MSCs, they induced an invasive breast cancer phenotype, characterized by increased spheroid growth and cell invasion in collagen gels. Further analysis of collagen gels using second-harmonic generation showed increased collagen density when senescent MSCs were present, suggesting that senescent MSCs actively remodel the surrounding matrix. This study provides direct evidence of the pro-malignant effects of senescent MSCs in tumors.


Subject(s)
Breast Neoplasms/genetics , Extracellular Matrix/metabolism , Mesenchymal Stem Cells/metabolism , Cell Proliferation , Female , Humans , Phenotype , Tumor Microenvironment
11.
Sci Rep ; 9(1): 11478, 2019 08 07.
Article in English | MEDLINE | ID: mdl-31391540

ABSTRACT

Recent studies suggest that glypican-1 (GPC-1) is a biomarker for prostate cancer, but there are few studies elucidating the role of GPC-1 in prostate cancer progression. We observed high expression of GPC-1 in more aggressive prostate cancer cell lines such as PC-3 and DU-145. While inhibition of GPC-1 expression in PC-3 cells decreased cell growth and migration in vitro, it surprisingly increased cell proliferation and migration in DU-145 cells, suggesting that the role of GPC-1 is cell type-dependent. Further, GPC-1 inhibition increased PC-3 tumor size in NCr nude mice xenografts. We hypothesized that the discrepancy between the in vitro and in vivo data is mediated by stromal cells in the tumor microenvironment. Thus, we tested the effect of tumor conditioned media (TCM) on gene expression in human mesenchymal stem cells and fibroblasts. Treatment of stromal cells with TCM from PC-3 cells transfected with GPC-1 shRNA increased the expression of migration markers, endocrine/paracrine biomolecules, and extracellular matrix components. Additionally, the decreased cell growth in GPC-1 knockdown PC-3 cells was rescued by coculturing with stromal cells. These data demonstrate the paradoxical role that GPC-1 plays in prostate cancer cell growth by interacting with stromal cells and through ECM remodeling and endocrine/paracrine signaling.


Subject(s)
Antineoplastic Agents/pharmacology , Extracellular Matrix/pathology , Glypicans/metabolism , Prostatic Neoplasms/pathology , Stromal Cells/pathology , Animals , Antineoplastic Agents/therapeutic use , Cell Culture Techniques , Cell Line, Tumor , Cell Movement/drug effects , Cell Proliferation/drug effects , Coculture Techniques , Culture Media, Conditioned , Extracellular Matrix/drug effects , Fibroblasts , Gene Knockdown Techniques , Glypicans/antagonists & inhibitors , Glypicans/genetics , Humans , Male , Mesenchymal Stem Cells , Mice , Paracrine Communication/drug effects , Prostate/cytology , Prostate/pathology , Prostatic Neoplasms/drug therapy , Stromal Cells/drug effects , Tumor Burden/drug effects , Tumor Microenvironment/drug effects , Xenograft Model Antitumor Assays
12.
Adv Exp Med Biol ; 1092: 69-90, 2018.
Article in English | MEDLINE | ID: mdl-30368749

ABSTRACT

The microenvironment in a solid tumor includes a multitude of cell types, matrix proteins, and growth factors that profoundly influence cancer cell mechanics by providing both physical and chemical stimulation. This tumor microenvironment, which is both dynamic and heterogeneous in nature, plays a critical role in cancer progression from the growth of the primary tumor to the development of metastatic and drug-resistant tumors. This chapter provides an overview of the biophysical tools used to study cancer cell mechanics and mechanical changes in the tumor microenvironment at different stages of cancer progression, including growth of the primary tumor, local invasion, and metastasis. Quantitative single cell biophysical analysis of intracellular mechanics, cell traction forces, and cell motility can easily be combined with analysis of critical cell fate processes, including adhesion, proliferation, and drug resistance, to determine how changes in mechanics contribute to cancer progression. This biophysical approach can be used to systematically investigate the parameters in the tumor that control cancer cell interactions with the stroma and to identify specific conditions that induce tumor-promoting behavior, along with strategies for inhibiting these conditions to treat cancer. Increased understanding of the underlying biophysical mechanisms that drive cancer progression may provide insight into novel therapeutic approaches in the fight against cancer.


Subject(s)
Neoplasm Metastasis , Neoplasms/pathology , Tumor Microenvironment , Biomechanical Phenomena , Cell Movement , Humans
13.
Sci Rep ; 8(1): 11935, 2018 08 09.
Article in English | MEDLINE | ID: mdl-30093656

ABSTRACT

Polyploidal giant cancer cells (PGCCs) have been observed by pathologists in patient tumor samples and are especially prominent in late stage, high grade disease or after chemotherapy. However, they are often overlooked due to their apparent dormancy. Recent research has shown PGCCs to be chemoresistant and express stem-like features, traits associated with disease progression and relapse. Here, we show the preferential survival of PGCCs during Paclitaxel (PTX) treatment and used multiple particle tracking analysis to probe their unique biophysical phenotype. We show that PGCCs have higher inherent cytoplasmic and nuclear stiffness in order to withstand the mechanical stress associated with their increased size and the chemical stress from PTX treatment. Inhibitor studies show the involvement of a dysregulated RhoA-Rock1 pathway and overall actin cytoskeletal network as the underlying mechanism for the altered biophysical phenotype of PGCCs. Furthermore, PGCCs exhibit a slow but persistent migratory phenotype, a trait commonly associated with metastatic dissemination and invasiveness. This work demonstrates the clinical relevance and the need to study this subpopulation, in order to devise therapeutic strategies to combat disease relapse. By highlighting the unique biophysical phenotype of PGCCs, we hope to provide unique avenues for therapeutic targeting of these cells in disease treatment.


Subject(s)
Actin Cytoskeleton/metabolism , Cell Movement/drug effects , Drug Resistance, Neoplasm/drug effects , Neoplastic Stem Cells/drug effects , Paclitaxel/pharmacology , Triple Negative Breast Neoplasms/metabolism , Antineoplastic Agents, Phytogenic/pharmacology , Biophysical Phenomena , Cell Line, Tumor , Cell Movement/genetics , Drug Resistance, Neoplasm/genetics , Female , Giant Cells/drug effects , Giant Cells/metabolism , Humans , Neoplastic Stem Cells/metabolism , Polyploidy , Signal Transduction/drug effects , Triple Negative Breast Neoplasms/genetics , Triple Negative Breast Neoplasms/pathology , rho-Associated Kinases/metabolism , rhoA GTP-Binding Protein/metabolism
14.
Front Cell Dev Biol ; 5: 28, 2017.
Article in English | MEDLINE | ID: mdl-28421182

ABSTRACT

The wound healing process initiates after injury to a tissue and involves a series of orchestrated events to minimize the invasion of foreign matters such as bacteria and efficiently regenerate the damaged tissue. A variety of cells must be recruited to the tissue during wound healing. However, this process is severely disrupted in patients suffering from chronic illness, including diabetes, leading to impaired healing or non-healing wounds. Current avenues of treatment include negative-pressure therapy, wound debridement, growth factor replacement, and cell-based therapies. Among these therapies, mesenchymal stem cells (MSCs) delivery to the wound holds a very high promise due to the innate abilities of MSCs that include immunogenicity, plasticity, and self-renewal. Bone marrow derived MSCs have been shown to promote more rapid wound healing by increased cytokine production in diabetic mice. However, the lack of understanding of the mechanical and chemical interaction of the transplanted MSCs with the factors present in the regenerative niches limits their efficacy in the wound bed. In this study, we sought to understand how the changes in MSC biochemical and biophysical properties can affect their function in vitro and in vivo. We demonstrate that pretreatment of MSCs with the mechano-stimulatory soluble factor transforming growth factor (TGF-ß1), which is highly expressed in injury sites, improves wound closure in a syngeneic murine wound model. This improved wound closure correlated with increased invasion into the wound bed. In vitro studies demonstrated that TGF-ß1 pretreatment expedited wound closure by increasing adhesion, traction force, and migration even after removal of the stimulus. Furthermore, this response was mediated by the cytoskeletal protein focal adhesion kinase. Taken together, this study suggests that defined chemical stimuli can benefit site specific adaptability of MSCs to improve their function and therapeutic usefulness.

15.
ACS Nano ; 11(4): 3716-3726, 2017 04 25.
Article in English | MEDLINE | ID: mdl-28333438

ABSTRACT

Most cancer patients die from metastasis. Recent studies have shown that gold nanoparticles (AuNPs) can slow down the migration/invasion speed of cancer cells and suppress metastasis. Since nuclear stiffness of the cell largely decreases cell migration, our hypothesis is that targeting AuNPs to the cell nucleus region could enhance nuclear stiffness, and therefore inhibit cell migration and invasion. Our results showed that upon nuclear targeting of AuNPs, the ovarian cancer cell motilities decrease significantly, compared with nontargeted AuNPs. Furthermore, using atomic force microscopy, we observed an enhanced cell nuclear stiffness. In order to understand the mechanism of cancer cell migration/invasion inhibition, the exact locations of the targeted AuNPs were clearly imaged using a high-resolution three-dimensional imaging microscope, which showed that the AuNPs were trapped at the nuclear membrane. In addition, we observed a greatly increased expression level of lamin A/C protein, which is located in the inner nuclear membrane and functions as a structural component of the nuclear lamina to enhance nuclear stiffness. We propose that the AuNPs that are trapped at the nuclear membrane both (1) add to the mechanical stiffness of the nucleus and (2) stimulate the overexpression of lamin A/C located around the nuclear membrane, thus increasing nuclear stiffness and slowing cancer cell migration and invasion.


Subject(s)
Antineoplastic Agents/pharmacology , Cell Nucleus/drug effects , Gold/pharmacology , Metal Nanoparticles/chemistry , Ovarian Neoplasms/drug therapy , Antineoplastic Agents/chemistry , Apoptosis/drug effects , Cell Movement/drug effects , Cell Nucleus/metabolism , Drug Screening Assays, Antitumor , Female , Gold/chemistry , Humans , Microscopy, Atomic Force , Ovarian Neoplasms/pathology , Particle Size , Tumor Cells, Cultured
16.
Stem Cells Dev ; 23(3): 245-61, 2014 Feb 01.
Article in English | MEDLINE | ID: mdl-24093435

ABSTRACT

Mesenchymal stem cells (MSCs) play an important role in matrix remodeling, fibroblast activation, angiogenesis, and immunomodulation and are an integral part of fibrovascular networks that form in developing tissues and tumors. The engraftment and function of MSCs in tissue niches is regulated by a multitude of soluble proteins. Transforming growth factor-ß1 (TGF-ß1) and platelet-derived growth factor-BB (PDGF) have previously been recognized for their role in MSC biology; thus, we sought to investigate their function in mediating MSC mechanics and matrix interactions. Cytoskeletal organization, characterized by cell elongation, stress fiber formation, and condensation of actin and microtubules, was dramatically affected by TGF-ß1, individually and in combination with PDGF. The intracellular mechanical response to these stimuli was measured with particle tracking microrheology. MSCs stiffened in response to TGF-ß1 (their elastic moduli was ninefold higher than control cells), a result that was enhanced by the addition of PDGF (100-fold change). Blocking TGF-ß1 or PDGF signaling with inhibitors SB-505124 or JNJ-10198409, respectively, reversed soluble-factor-induced stiffening, indicating that crosstalk between these two pathways is essential for stiffening response. A genome-wide microarray analysis revealed TGF-ß1-dependent regulation of cytoskeletal actin-binding protein genes. Actin crosslinking and bundling protein genes, which regulate cytosolic rheology through changes in semiflexible actin polymer meshwork, were upregulated with TGF-ß1 treatment. TGF-ß1 alone and in combination with PDGF also amplified surface integrin expression and adhesivity of MSCs with extracellular matrix proteins. These findings will provide a more mechanistic insight for modeling tissue-level rigidity in fibrotic tissues and tumors.


Subject(s)
Bone Marrow Cells/drug effects , Mesenchymal Stem Cells/drug effects , Microfilament Proteins/metabolism , Platelet-Derived Growth Factor/pharmacology , Transforming Growth Factor beta1/pharmacology , Animals , Benzodioxoles/pharmacology , Biomechanical Phenomena , Bone Marrow Cells/cytology , Bone Marrow Cells/metabolism , Cell Adhesion/drug effects , Cell Proliferation/drug effects , Drug Synergism , Elastic Modulus , Gene Expression Profiling , Gene Expression Regulation , Imidazoles/pharmacology , Indans/pharmacology , Male , Mesenchymal Stem Cells/cytology , Mesenchymal Stem Cells/metabolism , Mice , Mice, Inbred C57BL , Microfilament Proteins/genetics , Oligonucleotide Array Sequence Analysis , Platelet-Derived Growth Factor/antagonists & inhibitors , Primary Cell Culture , Pyrazoles/pharmacology , Pyridines/pharmacology , Signal Transduction , Transforming Growth Factor beta1/antagonists & inhibitors
17.
PLoS One ; 7(3): e33248, 2012.
Article in English | MEDLINE | ID: mdl-22438903

ABSTRACT

The progression of neoplastic malignancies is a complex process resulting not only from the accumulation of mutations within tumor cells, but also modulation of the tumor microenvironment. Recent advances have shown that the recruitment and subsequent heterotypic interactions of stromal cells--including fibroblasts and bone marrow-derived mesenchymal stem cells (MSCs)--are crucial for carcinogenesis. Though extensive work has been done analyzing the signals that recruit these cells, the governing mechanical properties have not been fully investigated. Here, we report that despite their initial similarities, MSCs respond not only faster but also more dramatically to pro-migratory tumor-secreted soluble factors. Utilizing multiple particle tracking microrheology to probe the cytoskeletal mechanical properties, we show that MSCs stiffen completely within one hour, three times faster than fibroblasts. In addition, unlike fibroblasts, MSCs exposed to tumor-secreted soluble factors display a functionally different phenotype characterized by morphological elongation, decreased actin stress fiber density, and decreased adhesion. Quantitative real-time PCR indicates these phenomena occur based on differential expression of small GTPases RhoA and Cdc42, but not Rac1. These findings demonstrate a fundamental difference in the recruitment of fibroblasts and MSCs.


Subject(s)
Fibroblasts/physiology , Mammary Neoplasms, Experimental/metabolism , Mesenchymal Stem Cells/physiology , Animals , Biomechanical Phenomena , Cell Line, Tumor , Cell Movement/physiology , Culture Media, Conditioned , Culture Media, Serum-Free , Cytoskeleton/physiology , Female , Fibroblasts/cytology , Focal Adhesions/physiology , Gene Expression , Mesenchymal Stem Cells/cytology , Mice , Neuropeptides/genetics , Rheology , Solubility , Swiss 3T3 Cells , cdc42 GTP-Binding Protein/genetics , rac GTP-Binding Proteins/genetics , rac1 GTP-Binding Protein , rho GTP-Binding Proteins/genetics , rhoA GTP-Binding Protein
SELECTION OF CITATIONS
SEARCH DETAIL
...