Search PubMedSearch

SEARCH · Search PubMed

Results for “Lens epithelial cells”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 19 recordsLinked to original sources

Action of ultrasonic irradiation on the DNA of cultivated bovine epithelial lens cell.

Cultivated epithelial lens cells have been submitted to a 20 kHz continuous ultrasonic irradiation. At relativity high intensity, destruction of the cells was observed. At lower intensities, where no cell destruction appeared, the molecular weight of the single strand DNA of these cells was monitored to determine whether breakage of DNA molecules was induced by the ultrasound. No breakage of the single strand DNA was observed for intensities below 0.1 and 0.4 W cm-2 with irradiation times of less than 20 minutes and 15 seconds, respectively. These intensities and their corresponding irradiation time are higher than those used in current diagnostic practice.

Animals

Dedifferentiation of lens epithelial cells in tissue culture.

Lens epithelial cells can be kept in their original differentiated state or brought to dedifferentiation depending on the culture conditions. The different stages of differentiation can be identified using specific markers, namely the activity of steroid metabolizing enzymes, and the synthesis of specific structural lens polypeptides. For this reason lens epithelial cells in tissue culture provide a unique system for the study of the regulation of RNA and protein biosynthesis.

Animals

Tissue culture of lens epithelial cells from normal and Nakano mice.

Lens epithelial cells from normal and Nakano adult mice have been cultured for over 1 year, and the cells have retained certain differentiated characteristics. Fluorescent antibody to mouse gamma crystallin reacted with the spherical lentoid bodies which appeared approximately 2 weeks after the start of the culture. The lentoid bodies also contained cells which had few cell organelles and homogenous cytoplasms. Both gamma crystallin production and loss of cellular organelles are characteristics of differentiated fiber cells rather than epithelial cells. An inhibitor of the Na-K ATPase is responsible for the hydration and subsequent cataract formation in the Nakamo mouse. The inhibitor of the Na-K ATPase was demonstrated in the lens in culture from the Nakamo mice, but no inhibitory activity was detected in the cultures from normal mice.

Adenosine Triphosphatases

Spontaneous transformation of bovine lens epithelial cells: kinetic analysis and differentiation in monolayers and in nude mice.

Bovine lens epithelial cells, in vivo, are known to perform two determined functions. First, they synthesize the lens capsule and subsequently, in the germinal region, they differentiate in fiber cells with massive production of crystallin proteins, inactivation and pyknosis of the nucleus. Bovine lens epithelial cells from adult origin can be cultured but so far no massive crystallin production has been demonstrated in vitro. We have studied the growth and differentiation of these cells and shown that in long term culture they acquire spontaneously many characteristics of transformation: unlimited growth potential, abnormal karyotype, multilayering. Viral particles were scarcely detected. However, they retain their epithelioid character and the ability to synthesize lens capsule material. Kinetic characteristics of those cells have been determined. When injected into nude mice, they actively proliferate and form tumors in which synthesis of alpha-crystallin can be demonstrated. These results show that in vitro transformation of lens epithelial cells does not affect their potential for terminal differentiation.

Animals

Histones biosynthesis and turnover in epithelial lens cells cultured in vitro.

"Histone synthesis was compared in epithelial lens cells during exponential growth and in the stationary phase brought by contact inhibition. Double labelling experiments with 3H-lysine and 14C-lysine show a net turnover of histone H1 independent of DNA replication. The nucleosome core histones seem to turn over also, but much more slowly than H1".

Animals

Differentiation of rat lens epithelial cells in tissue culture. (I) Effects of cell density, medium and embryonic age of initial culture.

The growth and differentiation of rat lens epithelial cells in tissue culture were studied. Cells could be maintained for a number of generations in an undifferentiated state in suspension culture. When cultured as monolayers, they grew and differentiated in a series of six defined stages described here. These stages include morphological changes (elongation, followed by cell "spreading" or formation of cell aggregates), and biochemical changes (appearance of nu-crystallin protein as detected by immunofluorescence). The process of differentiation appeared to be accelerated in the vicinity of elongated cells, occurred more rapidly at high cell density, and required frequent changes of medium. This suggests that cell-cell communication, and not medium factors, may be essential for promoting differentiation. The final morphology of the differentiated cells differed, depending on the embryonic age of the rats used as a source of lens epithelial cells. This implies that the programme for differentiation changes as a function of the embryonic age of the lens.

Animals

KLF5 promotes proliferation, migration, and autophagy-/EMT‑associated molecular changes in lens epithelial cells via transcriptional activation of THBS1 in traumatic cataract.

PURPOSE: Traumatic cataract is a common blinding eye disease after ocular trauma, and its pathogenesis is closely related to lens epithelial cell dysfunction, while the definite molecular regulatory mechanism between upstream transcription factor and downstream target gene remains poorly clarified. This study aimed to clarify the role and molecular mechanism of the krüppel-like factor 5 (KLF5)/ thrombosponin 1 (THBS1) axis in regulating proliferation, migration, epithelial-mesenchymal transition and autophagy of lens epithelial cells in traumatic cataract, and to explore its potential clinical therapeutic value. METHODS: The GSE295383 dataset in the gene expression omnibus (GEO) database was downloaded, and the differentially expressed genes (DEGs) were screened by linear models for microarray data (limma) package of R language. Combined with Weighted gene co-expression network analysis (WGCNA), the gene co-expression network was constructed and the key modules were screened. Gene ontology (GO), kyoto encyclopedia of genes and genomes (KEGG) and gene set enrichment analysis (GSEA) combined with human transcription factor target (hTFtarget) and JASPAR databases were used to predict the upstream transcription factors of THBS1. Subsequently, SRA01/04 cells were induced with transforming growth factor-beta 2 (TGF-β2) to construct a cataract cell model. RESULTS: THBS1 and KLF5 were highly expressed in LECs exposed to TGF-β2. KLF5 could activate THBS1 transcription by binding to THBS1 promoter - 174 to -165 sites. Knockdown of THBS1 inhibited TGF-β2-induced viability, proliferation, migration, and altered the expression of epithelial-mesenchymal transition (EMT)- and autophagy-related markers in LECs. Knockdown of KLF5 downregulated THBS1 expression and produced a similar inhibitory effect, while overexpression of THBS1 reversed the effect of KLF5 knockdown. CONCLUSIONS: This study demonstrated that KLF5 promoted the proliferation, migration, and EMT‑associated molecular changes of LECs in traumatic cataract through transcriptional activation of THBS1, and regulated the expression of autophagy‑related markers in LECs, suggesting that KLF5/THBS1 axis might be a potential target for the treatment of traumatic cataract.

Cataract

A lipidomic study on the lens epithelial cells of patients with age related cataracts.

Age related cataracts (ARC) represent the main reason for blindness globally. The lens epithelial cells (LECs) participate not only in the metabolism of many substances in the lens but also in maintaining lens transparency. This study used lipidomics to investigate the metabolic differences in LECs of ARC patients with different severity, aiming at identifying potential metabolic biomarkers of ARC. Patients diagnosed with ARC and underwent cataract surgery at Shanghai Tongren Hospital were selected to participate in this study, which were classified as mild ARC group and severe ARC group. During their cataract surgery, anterior lens capsules(LCs) containing LECs were obtained. The lipidomics of LECs were analyzed using the liquid chromatography‑mass spectrometry (LC-MS). Potential pathways of lipids were searched for using databases such as the Kyoto Encyclopedia of Genes and Genomes (KEGG) and MetaboAnalyst platform. In LEC lipids, 26 lipids have been identified as potential biomarkers between mild ARC and severe ARC, with AUC values of 0.67-0.94. The pathway analysis results revealed that the Glycerophospholipid (GPL) metabolism was significantly influenced, indicating that these metabolic markers contribute significantly to regulating this pathway. The LEC metabolic spectrum demonstrates a proficient ability to differentiate between patients with varying levels of cataracts. Herein, we have successfully identified potential metabolic biomarkers and pathways that have proven to be valuable in enhancing our understanding of ARC pathogenesis. The finding has translational value for developing new cataract treatment methods in the future.

Humans

Lens epithelial cell elongation in the absence of microtubules: evidence for a new effect of colchicine.

Embryonic chick lens epithelial cells cultured in serum-supplemented medium elongated in the absence of microtubules after treatment with the antimicrotubule drug nocodazole. Colchicine, at concentrations lower than those that dissociate microtubules, blocks cell elongation and the associated increase in cell volume. These results indicate that an increase in cell volume, not microtubules, is responsible for lens cell elongation and suggest a previously undescribed effect of colchicine on cell volume regulation.

Animals

[DNA and protein synthesis in cultured lens epithelial cells. II. Activity of synthetic effectors].

Cultivated bovine lens epithelium cells are highly susceptible to inhibitors of DNA-, RNA- and protein synthesis. The strict correlation between inhibition by puromycin of protein and DNA synthesis suggests that, in the cell system investigated, protein synthesis is essential for DNA synthesis to occur. Studies with actinomycin D have shown that in cultivated lens epithelium cells, part of protein synthesis is accomplished through a relatively long-lived mRNA. In long-term cultivation experiments, no further stabilization of mRNA, which is typical of lens fibre cells, could be demonstrated. There are indications that high doses of actinomycin D produce direct inhibition of DNA synthesis. By means of cytosine arabinoside a linear relationship was established between concentration of the effector and inhibition of DNA synthesis. Protein synthesis remains virtually unaffected even after high doses. The strong inhibition of DNA synthesis with protein synthesis continuing ("unbalanced growth") could not be utilized for the synchronization of lens epithelium cells, because it was only partly reversible after changing the medium and applying deoxycytidine.

Animals

[DNA and protein synthesis in cultured lens epithelial cells. I. Test system].

An in vitro test system for measuring DNA and protein synthesis in cultivated lens epithelium cells was developed. The method is suited also for other monolayer cultures; it has the following advantages: a) Cultivation of cells, incubation with radionuclides, preparation of the samples and measurement of radioactivity are carried out in the same vessel (scintillation vial); b) The use of 3H-thymidine and 14C-phenylalanine allows simultaneous measurement of DNA and protein synthesis; c) Only small amounts of cells (10(4) to 10(5) cells) are required to measure DNA and protein synthesis. The test system is highly sensitive to synthetic effectors (cytosone arabinoside, actinomycin D, puromycin), and is thus appropriate for the detection of inhibitors of DNA and protein synthesis and for testing the toxicity of drugs.

Animals