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6,240
result(s) for
"cell reprogramming"
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Reprogramming the tumor microenvironment by genome editing for precision cancer therapy
by
Yang, Dong-Hua
,
Li, Xiang-Ping
,
Zhan, Yan
in
Antimitotic agents
,
Antineoplastic agents
,
Biomedical and Life Sciences
2022
The tumor microenvironment (TME) is essential for immune escape by tumor cells. It plays essential roles in tumor development and metastasis. The clinical outcomes of tumors are often closely related to individual differences in the patient TME. Therefore, reprogramming TME cells and their intercellular communication is an attractive and promising strategy for cancer therapy. TME cells consist of immune and nonimmune cells. These cells need to be manipulated precisely and safely to improve cancer therapy. Furthermore, it is encouraging that this field has rapidly developed in recent years with the advent and development of gene editing technologies. In this review, we briefly introduce gene editing technologies and systematically summarize their applications in the TME for precision cancer therapy, including the reprogramming of TME cells and their intercellular communication. TME cell reprogramming can regulate cell differentiation, proliferation, and function. Moreover, reprogramming the intercellular communication of TME cells can optimize immune infiltration and the specific recognition of tumor cells by immune cells. Thus, gene editing will pave the way for further breakthroughs in precision cancer therapy.
Journal Article
Cell reprogramming to model Huntington's disease:a comprehensive review
by
Monk, Ruth
,
Connor, Bronwen
in
cell reprogramming
,
Cognitive ability
,
direct cell reprogramming
2021
Huntington’s disease (HD) is a neurodegenerative disorder characterized by the progressive decline of motor, cognitive, and psychiatric functions. HD results from an autosomal dominant mutation that causes a trinucleotide CAG repeat expansion and the production of mutant Huntingtin protein (mHTT). This results in the initial selective and progressive loss of medium spiny neurons (MSNs) in the striatum before progressing to involve the whole brain. There are currently no effective treatments to prevent or delay the progression of HD as knowledge into the mechanisms driving the selective degeneration of MSNs has been hindered by a lack of access to live neurons from individuals with HD. The invention of cell reprogramming provides a revolutionary technique for the study, and potential treatment, of neurological conditions. Cell reprogramming technologies allow for the generation of live disease-affected neurons from patients with neurological conditions, becoming a primary technique for modelling these conditions in vitro. The ability to generate HD-affected neurons has widespread applications for investigating the pathogenesis of HD, the identification of new therapeutic targets, and for high-throughput drug screening. Cell reprogramming also offers a potential autologous source of cells for HD cell replacement therapy. This review provides a comprehensive analysis of the use of cell reprogramming to model HD and a discussion on recent advancements in cell reprogramming technologies that will benefit the HD field.
Journal Article
Peritumoral brain zone in glioblastoma: biological, clinical and mechanical features
by
Armocida, Daniele
,
Seano, Giorgio
,
Ballestín, Alberto
in
Brain cancer
,
Brain research
,
cell plasticity and cell reprogramming
2024
Glioblastoma is a highly aggressive and invasive tumor that affects the central nervous system (CNS). With a five-year survival rate of only 6.9% and a median survival time of eight months, it has the lowest survival rate among CNS tumors. Its treatment consists of surgical resection, subsequent fractionated radiotherapy and concomitant and adjuvant chemotherapy with temozolomide. Despite the implementation of clinical interventions, recurrence is a common occurrence, with over 80% of cases arising at the edge of the resection cavity a few months after treatment. The high recurrence rate and location of glioblastoma indicate the need for a better understanding of the peritumor brain zone (PBZ). In this review, we first describe the main radiological, cellular, molecular and biomechanical tissue features of PBZ; and subsequently, we discuss its current clinical management, potential local therapeutic approaches and future prospects.
Journal Article
Generation of Leydig-like cells: approaches, characterization, and challenges
by
Chen, Hao-Lin
,
Su, Zhi-Jian
,
Lu, Jun-Dong
in
Fibroblasts
,
fibroblasts; hypogonadism; leydig-like cells; reprogramming; stem cells
,
Review
2022
Testosterone production by Leydig cells (LCs) plays a crucial role in male reproduction. The functional degeneration of LCs can cause testosterone deficiency, ultimately resulting in primary male hypogonadism. Transplantation of exogenous LCs with the ability to produce testosterone in response to the regulation of the hypothalamus-pituitary-gonad axis could be a promising alternative option to treat male primary hypogonadism. Recent studies have shown that it is possible to generate Leydig-like cells from stem cells by various approaches. In addition, somatic cells, such as embryonic or adult fibroblasts, have also been successfully reprogrammed into Leydig-like cells. In this review, we summarized the recent advances in the generation of Leydig-like cells, with an emphasis on comparing the effectiveness and safety of different protocols used and the cells generated. By further analyzing the characteristics of Leydig-like cells generated from fibroblasts based on small signaling molecules and regulatory factors, we found that although the cells may produce testosterone, they are significantly different from real LCs. For future in vivo applications, it is important that the steroidogenic cells generated be evaluated not only for their steroidogenic functions but also for their overall cell metabolic state by proteomics or transcriptomic tools.
Journal Article
Reprogramming the wound microenvironment: identity remodeling strategies for fibroblasts, keratinocytes, and macrophages
by
Chen, Xiaojun
,
Chen, Min
,
Wang, Jing
in
cell reprogramming
,
epigenetic regulation
,
fibroblasts
2026
The core pathology of chronic non-healing wounds is the dysfunction of wound-repair cells—a molecular defect that conventional passive therapies can hardly correct at its root. Cell reprogramming techniques, by actively rewriting cell identity, have therefore brought a paradigm shift to wound repair. Herein, we propose a systematic “four-dimensional technology toolbox” for wound cell reprogramming, comprising transcription factor-mediated, small-molecule-induced, epigenetic and metabolic regulation, and nanomaterial-assisted delivery. Using this toolbox as the main thread, we comprehensively integrate three core cell-identity reprogramming strategies: fibroblasts (from a profibrotic scar-forming phenotype to a pro-regenerative repair-competent phenotype), keratinocytes (restoring the endogenous regenerative capacity of keratinocytes to reconstruct the epidermal barrier), and macrophages (from a pro-inflammatory pathological state to a reparative homeostatic phenotype). Remedying the principal weaknesses of existing reviews—overemphasis on technique listing, weak mechanistic integration, and lack of translational critique—we dissect the key molecular mechanisms layer by layer and critically evaluate the core clinical-translation bottlenecks, including safety, spatiotemporal precision, and model systems. Finally, we spotlight emerging frontiers such as single-cell multi-omics navigation, AI-driven temporally programmed smart materials, and trained immunity, and discuss how they propel the field from proof-of-concept toward a precision systems-engineering paradigm of “personalized diagnosis → intelligent sequential delivery → closed-loop healing monitoring”. This work not only offers a novel intervention paradigm for the core challenges of treating chronic non-healing wounds like diabetic foot ulcers, but also delivers a panoramic theoretical framework and practical guidance for precision reprogramming therapy—from fundamental mechanisms to clinical translation.
Journal Article
Endogenous retinal neural stem cell reprogramming for neuronal regeneration
In humans, optic nerve injuries and associated neurodegenerative diseases are often followed by perma- nent vision loss. Consequently, an important challenge is to develop safe and effective methods to replace retinal neurons and thereby restore neuronal functions and vision. Identifying cellular and molecular mechanisms allowing to replace damaged neurons is a major goal for basic and translational research in regenerative medicine. Contrary to mammals, the zebrafish has the capacity to fully regenerate entire parts of the nervous system, including retina. This regenerative process depends on endogenous retinal neural stem cells, the Miiller glial cells. Following injury, zebrafish Miiller cells go back into cell cycle to proliferate and generate new neurons, while mammalian Mtiller cells undergo reactive gliosis. Recently, transcription factors and microRNAs have been identified to control the formation of new neurons derived from ze- brafish and mammalian Mtiller cells, indicating that cellular reprogramming can be an efficient strategy to regenerate human retinal neurons. Here we discuss recent insights into the use of endogenous neural stem cell reprogramming for neuronal regeneration, differences between zebrafish and mammalian Mtiller cells, and the need to pursue the identification and characterization of new molecular factors with an instructive and potent function in order to develop theurapeutic strategies for eye diseases.
Journal Article
Neutrophils in cancer carcinogenesis and metastasis
2021
In recent years, neutrophils have attracted increasing attention because of their cancer-promoting effects. An elevated neutrophil-to-lymphocyte ratio is considered a prognostic indicator for patients with cancer. Neutrophils are no longer regarded as innate immune cells with a single function, let alone bystanders in the pathological process of cancer. Their diversity and plasticity are being increasingly recognized. This review summarizes previous studies assessing the roles and mechanisms of neutrophils in cancer initiation, progression, metastasis and relapse. Although the findings are controversial, the fact that neutrophils play a dual role in promoting and suppressing cancer is undeniable. The plasticity of neutrophils allows them to adapt to different cancer microenvironments and exert different effects on cancer. Given the findings from our own research, we propose a reasonable hypothesis that neutrophils may be reprogrammed into a cancer-promoting state in the cancer microenvironment. This new perspective indicates that neutrophil reprogramming in the course of cancer treatment is a problem worthy of attention. Preventing or reversing the reprogramming of neutrophils may be a potential strategy for adjuvant cancer therapy.
Journal Article
Regulatory T Cells: the Many Faces of Foxp3
by
Georgiev, Peter
,
Louis-Marie Charbonnier
,
Chatila, Talal A
in
Forkhead protein
,
Foxp3 protein
,
Homeostasis
2019
Regulatory T (Treg) cells expressing the transcription factor forkhead box P3 (Foxp3) play a requisite role in the maintenance of immunological homeostasis and prevention of peripheral self-tolerance breakdown. Although Foxp3 by itself is neither necessary nor sufficient to specify many aspects of the Treg cell phenotype, its sustained expression in Treg cells is indispensable for their phenotypic stability, metabolic fitness, and regulatory function. In this review, we summarize recent advances in Treg cell biology, with a particular emphasis on the role of Foxp3 as a transcriptional modulator and metabolic gatekeeper essential to an effective immune regulatory response. We discuss these findings in the context of human inborn errors of immune dysregulation, with a focus on FOXP3 mutations, leading to Treg cell deficiency. We also highlight emerging concepts of therapeutic Treg cell reprogramming to restore tolerance in the settings of immune dysregulatory disorders.
Journal Article
Alveolar echinococcosis drives functional reprogramming of hepatic CD8+ T cells
Alveolar echinococcosis (AE), caused by the larval stage of
, exhibits infiltrative, tumor-like behavior in the liver and persists within its tolerogenic immune environment. Although T cells are central to host defense, the stage-specific remodeling of their lineage states during AE remains unclear.
A secondary AE infection model was established by portal vein injection of approximately 1,000 viable protoscoleces in C57BL/6 mice. Liver tissues collected at 3 days (3 dpi) and 3 months (3 mpi) post-infection were analyzed using single-cell RNA sequencing (scRNA-seq), flow cytometry, and multiplex immunofluorescence to characterize T-cell subset composition, transcriptional programs, and potential interactions with dendritic cells (DCs).
scRNA-seq of 78,290 high-quality cells identified 13 immune and non-immune populations and revealed strong temporal shifts in hepatic immunity. Early infection featured macrophage-driven inflammation with reduced T-cell proportions, whereas late infection showed marked expansion of both T cells and DCs. CD8
T-cell profiling demonstrated the establishment of a diversified compartment composed of cytotoxic, effector-memory, and exhausted subsets. These subsets exhibited coordinated transcriptional remodeling, including upregulation of regulatory genes (
) and downregulation of early-induced inflammatory and metabolic genes, indicating adaptation to sustained antigen exposure. Spatial imaging further revealed ring-like accumulation of CD11c
DCs around lesions with adjacent clustering of CD8
T cells, and ligand-receptor analysis highlighted Thy1-Adgre5 as a prominent DC-T-cell interaction axis.
AE infection drives a transition from acute inflammation to chronic immune regulation through extensive lineage diversification and functional reprogramming of CD8
T cells. Spatially organized DC-T-cell interactions likely contribute to maintaining a regulated yet immunologically active microenvironment, providing insights for targeting chronic-stage immune responses in AE.
Journal Article
Highly efficient reprogrammable mouse lines with integrated reporters to track the route to pluripotency
2022
Revealing the molecular events associated with reprogramming different somatic cell types to pluripotency is critical for understanding the characteristics of induced pluripotent stem cell (iPSC) therapeutic derivatives. Inducible reprogramming factor transgenic cells or animals—designated as secondary (2°) reprogramming systems—not only provide excellent experimental tools for such studies but also offer a strategy to study the variances in cellular reprogramming outcomes due to different in vitro and in vivo environments. To make such studies less cumbersome, it is desirable to have a variety of efficient reprogrammable mouse systems to induce successful mass reprogramming in somatic cell types. Here, we report the development of two transgenic mouse lines from which 2° cells reprogram with unprecedented efficiency. These systems were derived by exposing primary reprogramming cells containing doxycycline-inducible Yamanaka factor expression to a transient interruption in transgene expression, resulting in selection for a subset of clones with robust transgene response. These systems also include reporter genes enabling easy readout of endogenous Oct4 activation (GFP), indicative of pluripotency, and reprogramming transgene expression (mCherry). Notably, somatic cells derived from various fetal and adult tissues from these 2° mouse lines gave rise to highly efficient and rapid reprogramming, with transgene-independent iPSC colonies emerging as early as 1 wk after induction. These mouse lines serve as a powerful tool to explore sources of variability in reprogramming and the mechanistic underpinnings of efficient reprogramming systems.
Journal Article