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300 result(s) for "Chou, Yu‐Ting"
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Sepsis and Acute Kidney Injury: A Review Focusing on the Bidirectional Interplay
Although sepsis and acute kidney injury (AKI) have a bidirectional interplay, the pathophysiological mechanisms between AKI and sepsis are not clarified and worthy of a comprehensive and updated review. The primary pathophysiology of sepsis-associated AKI (SA-AKI) includes inflammatory cascade, macrovascular and microvascular dysfunction, cell cycle arrest, and apoptosis. The pathophysiology of sepsis following AKI contains fluid overload, hyperinflammatory state, immunosuppression, and infection associated with kidney replacement therapy and catheter cannulation. The preventive strategies for SA-AKI are non-specific, mainly focusing on infection control and preventing further kidney insults. On the other hand, the preventive strategies for sepsis following AKI might focus on decreasing some metabolites, cytokines, or molecules harmful to our immunity, supplementing vitamin D3 for its immunomodulation effect, and avoiding fluid overload and unnecessary catheter cannulation. To date, several limitations persistently prohibit the understanding of the bidirectional pathophysiologies. Conducting studies, such as the Kidney Precision Medicine Project, to investigate human kidney tissue and establishing parameters or scores better to determine the occurrence timing of sepsis and AKI and the definition of SA-AKI might be the prospects to unveil the mystery and improve the prognoses of AKI patients.
Intrinsic PDL1 Signaling Modulates TGFBI‐Mediated Growth Suppression in Lung Adenocarcinoma
Programmed death ligand 1 (PDL1) suppresses T‐cell immunity by engaging programmed cell death protein 1 (PD1), and its blockade can activate T‐cell responses. Although PDL1 is a transmembrane protein, its intrinsic signaling role in regulating oncogenesis remains unclear. Our study reveals lung adenocarcinomas (ADCs) exhibit deficient PDL1 expression, which correlates with poor patient prognosis. TGF‐β stimulation induced PDL1 expression, while silencing PDL1 in PDL1‐high lung ADC cells enhanced colony formation, and PDL1 overexpression inhibited lung cancer cell growth. Cell cycle analysis indicated that PDL1 silencing increased S‐phase entry in lung ADC cells. Furthermore, PDL1 expression reduced FAK, ERK, and AKT phosphorylation, increasing cell detachment from the substrate. Gene expression profiling identified TGFBI as a downstream molecule of PDL1. TGF‐β induced TGFBI expression, and knockdown of TGFBI increased the growth of lung ADC cells. Given that TGF‐β regulates CITED2 and p21CIP1 to initiate cell growth arrest, we examined the PDL1‐TGFBI axis's impact on these molecules. Knockdown of PDL1 or TGFBI induced CITED2 expression but decreased p21CIP1 expression in lung ADC cells. Moreover, inhibiting FAK via pharmacologic or genetic approaches decreased CITED2 but increased p21CIP1 expression in PDL1‐silenced lung ADC cells. These findings suggest that intrinsic PDL1‐TGFBI signaling inhibits FAK activation, affecting the CITED2 molecular switch, which induces p21CIP1, ultimately leading to cell growth arrest. Our study provides insights into intrinsic PDL1 signaling in lung ADC oncogenesis and indicates that PDL1 expression could be a biomarker for lung ADC progression. Programmed death ligand 1 (PDL1) is known for suppressing T‐cell immunity, but its intrinsic role in oncogenesis remains unclear. This study demonstrates that PDL1 expression in lung adenocarcinoma (ADC) inhibits tumor cell growth by reducing FAK activation and regulating the CITED2‐p21CIP1 axis, leading to cell growth arrest. These findings reveal PDL1's dual role in immune regulation and tumor suppression, suggesting it as a potential biomarker for lung ADC progression.
Novel Antimicrobial Peptides with High Anticancer Activity and Selectivity
We describe a strategy to boost anticancer activity and reduce normal cell toxicity of short antimicrobial peptides by adding positive charge amino acids and non-nature bulky amino acid β-naphthylalanine residues to their termini. Among the designed peptides, K4R2-Nal2-S1 displayed better salt resistance and less toxicity to hRBCs and human fibroblast than Nal2-S1 and K6-Nal2-S1. Fluorescence microscopic studies indicated that the FITC-labeled K4R2-Nal2-S1 preferentially binds cancer cells and causes apoptotic cell death. Moreover, a significant inhibition in human lung tumor growth was observed in the xenograft mice treated with K4R2-Nal2-S1. Our strategy provides new opportunities in the development of highly effective and selective antimicrobial and anticancer peptide-based therapeutics.
A mammalian Wnt5a–Ror2–Vangl2 axis controls the cytoskeleton and confers cellular properties required for alveologenesis
Alveolar formation increases the surface area for gas-exchange and is key to the physiological function of the lung. Alveolar epithelial cells, myofibroblasts and endothelial cells undergo coordinated morphogenesis to generate epithelial folds (secondary septa) to form alveoli. A mechanistic understanding of alveologenesis remains incomplete. We found that the planar cell polarity (PCP) pathway is required in alveolar epithelial cells and myofibroblasts for alveologenesis in mammals. Our studies uncovered a Wnt5a–Ror2–Vangl2 cascade that endows cellular properties and novel mechanisms of alveologenesis. This includes PDGF secretion from alveolar type I and type II cells, cell shape changes of type I cells and migration of myofibroblasts. All these cellular properties are conferred by changes in the cytoskeleton and represent a new facet of PCP function. These results extend our current model of PCP signaling from polarizing a field of epithelial cells to conferring new properties at subcellular levels to regulate collective cell behavior. The lungs enable the exchange of gases between inhaled air and the bloodstream. This exchange happens in structures called alveoli, which have a large surface area that aids in efficient gas exchange. Shortly after birth in mice, or during the last few months before birth in humans, alveoli develop folds called secondary septa that increase their surface area and improve the efficiency of gas exchange. Several types of cells work together to form secondary septa. Surface cells called epithelia and underlying “myofibroblast” cells and small blood vessels must both communicate and move together to build the septa. The processes that control the formation of septa have not been fully studied. In other cases, a cell signaling pathway known as the planar cell polarity (PCP) pathway has been shown to help coordinate cell movements. The PCP pathway works by changing the cytoskeleton of cells, which is the series of protein fibers that give cells their shape and structure and the ability to move. Zhang et al. have now studied septa in mouse lungs and revealed how three genes – Wnt5a, Ror2 and Vangl2 – in the PCP pathway control this process. This pathway oversees changes to the cytoskeleton in both epithelial cells and myofibroblasts, helping the cells to change shape and move together to form septa. Unusually, the PCP pathway has different effects in different cells, rather than affecting all cells similarly. This is partly due to so-called PDGF signals from the epithelial cells that help to guide the growth and movement of myofibroblasts. This process is helped by the epithelial cells changing their shape to accommodate myofibroblasts during septa formation. Further analysis also showed reduced PCP signaling in patients with chronic obstructive pulmonary disease, also known as COPD. This could be a factor in the extensive lung damage seen in these patients. These findings help to explain a key lung development process and may provide new insights to understand lung diseases such as COPD.
A Natural Degradant of Curcumin, Feruloylacetone Inhibits Cell Proliferation via Inducing Cell Cycle Arrest and a Mitochondrial Apoptotic Pathway in HCT116 Colon Cancer Cells
Feruloylacetone (FER) is a natural degradant of curcumin after heating, which structurally reserves some functional groups of curcumin. It is not as widely discussed as its original counterpart has been previously; and in this study, its anticancer efficacy is investigated. This study focuses on the suppressive effect of FER on colon cancer, as the efficacious effect of curcumin on this typical cancer type has been well evidenced. In addition, demethoxy-feruloylacetone (DFER) was applied to compare the effect that might be brought on by the structural differences of the methoxy group. It was revealed that both FER and DFER inhibited the proliferation of HCT116 cells, possibly via suppression of the phosphorylated mTOR/STAT3 pathway. Notably, FER could significantly repress both the STAT3 phosphorylation and protein levels. Furthermore, both samples showed capability of arresting HCT116 cells at the G2/M phase via the activation of p53/p21 and the upregulation of cyclin-B. In addition, ROS elevation and changes in mitochondrial membrane potential were revealed, as indicated by p-atm elevation. The apoptotic rate rose to 36.9 and 32.2% after being treated by FER and DFER, respectively. In summary, both compounds exhibited an anticancer effect, and FER showed a greater proapoptotic effect, possibly due to the presence of the methoxy group on the aromatic ring.
Tumor suppressor p53 restrains cancer cell dissemination by modulating mitochondrial dynamics
Tumor suppressor p53 plays a central role in preventing tumorigenesis. Here, we unravel how p53 modulates mitochondrial dynamics to restrain the metastatic properties of cancer cells. p53 inhibits the mammalian target of rapamycin complex 1 (mTORC1) signaling to attenuate the protein level of mitochondrial fission process 1 (MTFP1), which fosters the pro-fission dynamin-related protein 1 (Drp1) phosphorylation. This regulatory mechanism allows p53 to restrict cell migration and invasion governed by Drp1-mediated mitochondrial fission. Downregulating p53 expression or elevating the molecular signature of mitochondrial fission correlates with aggressive tumor phenotypes and poor prognosis in cancer patients. Upon p53 loss, exaggerated mitochondrial fragmentation stimulates the activation of the extracellular signal-regulated kinase 1/2 (ERK1/2) signaling resulting in epithelial-to-mesenchymal transition (EMT)-like changes in cell morphology, accompanied by accelerated matrix metalloproteinase 9 (MMP9) expression and invasive cell migration. Notably, blocking the activation of mTORC1/MTFP1/Drp1/ERK1/2 axis completely abolishes the p53 deficiency-driven cellular morphological switch, MMP9 expression, and cancer cell dissemination. Our findings unveil a hitherto unrecognized mitochondria-dependent molecular mechanism underlying the metastatic phenotypes of p53-compromised cancers.
Prognostic and Monitoring Utility of Serum CEA in Lung Adenocarcinoma: Differential Roles in EGFR‐TKI and Chemotherapy Treatments
Background Serum carcinoembryonic antigen (CEA) has potential prognostic and monitoring significance in lung adenocarcinoma (LUAD) patients undergoing different treatments, such as epidermal growth factor receptor (EGFR)‐tyrosine kinase inhibitors (TKIs) and chemotherapy. The changes in CEA expression during relapses, influenced by resistance mechanisms involving cytokines and epigenetic factors, may impact its utility in disease prognosis, monitoring, and management. Methods This retrospective study analyzed advanced LUAD patients treated between 2011 and 2018, including 182 patients receiving EGFR‐TKIs and 102 undergoing chemotherapies. Serum CEA levels were measured at baseline and relapse. Associations between CEA levels, treatment modalities, and survival outcomes were assessed using Cox regression and Kaplan–Meier analyses. Gene expression profiling and in vitro experiments explored the regulation of CEACAM5 expression by cytokines and epigenetic mechanisms in EGFR‐TKI‐resistant cells. Results Elevated baseline CEA (≥ 5 ng/mL) was associated with significantly worse overall survival (OS) in patients treated with EGFR‐TKIs but showed no prognostic value in chemotherapy‐treated patients. During the relapse, EGFR‐TKI–treated patients were more likely to exhibit a transition to CEA‐negative status (< 5 ng/mL) compared to those receiving chemotherapy. Mechanistic studies revealed that EGFR‐TKI‐resistant cells displayed reduced CEACAM5 expression and increased epithelial‐to‐mesenchymal transition (EMT) markers, driven by cytokine signaling and epigenetic modifications. Conclusions Serum CEA is a stronger prognostic biomarker for LUAD patients treated with EGFR‐TKIs while offering consistent monitoring capabilities in chemotherapy‐treated patients. These findings highlight the differential clinical value of serum CEA in guiding therapeutic strategies and monitoring disease progression across treatment modalities.
Acute Kidney Injury and Gut Dysbiosis: A Narrative Review Focus on Pathophysiology and Treatment
Acute kidney injury (AKI) and gut dysbiosis affect each other bidirectionally. AKI induces microbiota alteration in the gastrointestinal (GI) system, while gut dysbiosis also aggravates AKI. The interplay between AKI and gut dysbiosis is not yet well clarified but worthy of further investigation. The current review focuses on the pathophysiology of this bidirectional interplay and AKI treatment in this base. Both macrophages and neutrophils of the innate immunity and the T helper type 17 cell from the adaptive immunity are the critical players of AKI-induced gut dysbiosis. Conversely, dysbiosis-induced overproduction of gut-derived uremic toxins and insufficient generation of short-chain fatty acids are the main factors deteriorating AKI. Many novel treatments are proposed to deter AKI progression by reforming the GI microbiome and breaking this vicious cycle. Data support the benefits of probiotic treatment in AKI patients, while the results of postbiotics are mainly limited to animals. Prebiotics and synbiotics are primarily discussed in chronic kidney disease patients rather than AKI patients. The effect of adsorbent treatment seems promising, but more studies are required before the treatment can be applied to patients. Immune therapy and some repurposed drugs such as allopurinol are prospects of future treatments and are worth more discussion and survey.
Cyproterone acetate acts as a disruptor of the aryl hydrocarbon receptor
Prostate cancer is a major cause of death in males. Cyproterone acetate (CPA), the steroidal anti-androgen for part of androgen deprivation therapy, may block the androgen-receptor interaction and then reduce serum testosterone through its weak anti-gonadotropic action. In addition to CPA inducing hepatitis, CPA is known to cause liver tumors in rats also. Aryl hydrocarbon receptor (AhR) is a cytoplasmic receptor and regulates multiple physiological functions. CYP1A1 is an AhR-targeted gene. We found that CPA induced CYP1A1 expression, transcriptional activity of the aryl hydrocarbon response element (AHRE), and the nuclear localization of AhR in mouse Hepa-1c1c7 cells. However, CPA suppressed CYP1A1 mRNA expression and the transcriptional activity of AHRE in human HepG2 and MCF7 cells, and also decreased AhR ligand-induced CYP1A1 protein expression and transcriptional activity of AHRE in HepG2 cells. In summary, CPA is an AhR agonist in mouse cells, but an AhR antagonist in human cells. Accordingly, CPA potentially plays a role as an endocrine disruptor of the AhR. This study helps us to understand why CPA induces acute hepatitis, gene mutation, and many other side effects. In addition, it may trigger further studies investigating the relationships between CPA, glucocorticoid receptor and castration-resistant prostate cancer in the future.
Crosstalk between SOX2 and cytokine signaling in endometrial carcinoma
Endometrial carcinoma is a cancer derived from oncogenesis of the regenerating uterine cavity, in which cytokine stimulation shapes cell differentiation and tissue remodeling. Expression of the stem cell factors SOX2 , OCT4 , NANOG , and MYC has been linked to tumor malignancy in several cancers. However, how these stem cell factors crosstalk with cytokine signaling to promote malignancy in endometrial carcinoma is still elusive. Here we report that the expression of SOX2 and MYC , but not that of OCT4 and NANOG , correlate with poor histological differentiation and prognosis, while SOX2 expression is negatively associated with MYC level. We found that SOX2 -high endometrial carcinoma cells possessed a higher colony-forming ability than their SOX2 -low counterparts, and knockdown of SOX2 attenuated the colony-forming ability. We observed that SOX2 regulated EGFR expression in a SOX2–EGFR positive feedback loop. EGF stimulation induced SOX2 expression and promoted migration of endometrial carcinoma cells, whereas TGF-β stimulation inhibited SOX2 expression and attenuated the colony-forming ability. Immunohistochemistry analysis revealed that SOX2 expression correlated with lymph node infiltration of endometrial carcinoma. Our findings support that cytokine-induced stem cell factor SOX2 possesses oncogenic properties, with the potential to serve as a prognostic biomarker in endometrial carcinoma.