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Increased in vitro tetraploidy: tissue specific within the heritable colorectal cancer syndromes with polyposis coli.

In vivo expression of human hereditary tumors are known to be tissue specific; in familial polyposis coli the genotype is expressed solely as colonic polyps that become malignant and in the Gardner syndrome as extracolonic connective tissue tumors and related neoplasms in addition to such colonic lesions. In vitro such tissue specificity was also seen in these 2 syndromes. Increased tetraploidy has been observed only in those cultures derived from tissues, which although appearing normal in the patient, were known to undergo malignant transformation in vivo based on clinical phenotypes and family histories: colonic mucosa in familial polyposis coli, skin and colonic mucosa in the Gardner syndrome. Cultures established from tissues known not to show neoplastic growth or from benign tumors (fibromas, sebaceous cysts and lipomas) did not show increased tetraploidy. Increased tetraploidy in cultures established from these 2 syndromes did not identify all cultured cells with either mutant genotype or those cells showing abnormal benign growths in vivo but rather only in those that are known to undergo malignant transformation in vivo in both syndromes. Such observations suggested that in these 2 syndromes there was a population of tetraploid cells, at least in culture, constantly present which may be relevant to the multi-step process of carcinogenesis.

Adolescent

Isolation and characterization of tissue-specific isozymes of glucosephosphate isomerase from catfish and conger.

In teleosts glucosephosphate isomerase exists as two tissue-specific isozymes. Most tissues contain the more acidic liver-type isozyme, while white muscle contains the more basic isozyme; and a few tissues contain both the liver- and muscle-type isozymes as well as a hybird. The isozymes were isolated from catfish liver and muscle and from conger muscle and shown to be homogeneous by polyacrylamide gel electrophoresis, isoelectric focusing, analytical ultracentrifugation, and rechromatography. Both isozymes are of molecular weight 132,000 (S020,w = 7.0 S) and composed of two subunits of Mr approximately 65,000. The muscle and liver isozymes were shown to have distinct isoelectric points (catfish liver = 6.2; muscle = 7.0) and amino acid compositions. Tryptic peptide maps, after S-carboxymethylation and carbamylation, revealed several distinct differences in the primary structures of the isozymes. Although the isozymes could also be distinguished on the basis of their stabilities, most of their basic catalytic properties were found to be similar. A conger was obtained which was heterozygous for the variant allele at the muscle-glucosephosphate isomerase locus. A comparison of the variant conger muscle isozyme with the wild type revealed a single altered peptide, suggesting a point mutation. The structure-function studies, as well as the genetic studies, clearly establish that the two types of isozymes are of independent genetic origin.

Alleles

Decoding SUMOylation as a metabolic stress sensor in aging and age-related disorders: Mechanisms, tissue specificity and therapeutic potential.

SUMOylation is a reversible post-translational modification increasingly recognized for its role in coordinating cellular responses to metabolic stress during aging. Emerging evidence indicates that it functions beyond a conventional modification, representing an adaptive stress‑responsive regulatory network that integrates metabolic, oxidative, inflammatory, and proteotoxic signals. Rather than acting on isolated pathways, this network finely tunes mitochondrial function, proteostasis, genome maintenance, immune balance, and epigenetic regulation. Accumulating evidence indicates that SUMO-dependent regulation exhibits remarkable tissue specificity, supporting mitochondrial adaptation and contractile integrity in skeletal muscle, shaping lipid and glucose metabolism in the liver, modulating proteotoxic stress and neuronal resilience in the brain, and contributing to immune cell differentiation and chronic low-grade inflammation during aging. In this review, we summarize current mechanistic insights into SUMO signaling across aging-relevant tissues, with particular emphasis on its functional interplay with other post-translational modifications, including ubiquitination and acetylation. We discuss how SUMOylation operates as a shared regulatory layer while enabling context-dependent outcomes that underlie diverse aging phenotypes and age-related disorders. Finally, we evaluate emerging translational approaches-ranging from pharmacological modulation of SUMO enzymes to lifestyle interventions such as caloric restriction and exercise-that highlight both the opportunities and challenges of targeting SUMO-regulated stress responses in aging. Together, this synthesis provides a framework for understanding how SUMOylation links metabolic stress to tissue-specific aging trajectories and therapeutic potential.

Aging

Tissue-specific inhibitor of lymphocyte proliferation extracted and purified from calf spleen. Biological and chemical properties.

A partly purified calf spleen extract which inhibits lymphocyte proliferation in a tissue-specific, species-nonspecific, nontoxic, and reversible way, and may thus contain a chalone-like activity, has been further characterized. Our results show that the inhibitor works in G1-phase. The activity is resistant to heat, trypsin- and ribonuclease-treatment. It appears to be an acidic molecule and it does not appear to contain ribonucleic acid. These properties are compared to the characteristics which have been described for tissue-specific inhibitors of lymphocyte proliferation by other authors.

Animals

Co-expression in tissue-specific gene networks links genes in cancer-susceptibility loci to known somatic driver genes.

BACKGROUND: The genetic background of cancer remains complex and challenging to integrate. Many somatic mutations within genes are known to cause and drive cancer, while genome-wide association studies (GWAS) of cancer have revealed many germline risk factors associated with cancer. However, the overlap between known somatic driver genes and positional candidate genes from GWAS loci is surprisingly small. We hypothesised that genes from multiple independent cancer GWAS loci should show tissue-specific co-regulation patterns that converge on cancer-specific driver genes. RESULTS: We studied recent well-powered GWAS of breast, prostate, colorectal and skin cancer by estimating co-expression between genes and subsequently prioritising genes that show significant co-expression with genes mapping within susceptibility loci from cancer GWAS. We observed that the prioritised genes were strongly enriched for cancer drivers defined by COSMIC, IntOGen and Dietlein et al. The enrichment of known cancer driver genes was most significant when using co-expression networks derived from non-cancer samples of the relevant tissue of origin. CONCLUSION: We show how genes within risk loci identified by cancer GWAS can be linked to known cancer driver genes through tissue-specific co-expression networks. This provides an important explanation for why seemingly unrelated sets of genes that harbour either germline risk factors or somatic mutations can eventually cause the same type of disease.

Humans

Tissue-specific esterases in the Xiphophorine fish Platypoecilus maculatus, Xiphophorus helleri, and their hybrid.

Tissue-specific esterases of the xiphophorine fishes Platypoecilus maculatus (platyfish), Xiphophorus helleri (swordtail), and their F1 hybrid have been analyzed using disc electrophoresis. Seven esterase zones (resolved into a maximum of nine bands) exist in these fishes, and these have been classified by employing specific inhibitors. Five of the seven zones, EST-1, EST-2, EST-5, EST-6, and EST-7, appeared to be carboxylesterases; while the two remaining zones, EST-3 and EST-4, were classified as cholinesterases. In the liver of the platfish, all seven esterase zones were detected, while the liver of the swordtail exhibited only five esterase zones. EST-1 and EST-3 were lacking in the liver tissue of the swordtail. All seven esterase loci were expressed in the liver tissue of the F1 hybrid. The reciprocal crosses gave the same results. In the fin, skin, skeletal muscle, and eye tissues from all three genotypes, three major esterase zones, EST-2, EST-5, and EST-7, were detected. In addition, EST-1 was frequently detected in all these tissues of the platfish and the F1, but was lacking in the swordtail. Serum from three genotypes showed one prominent esterase zone, EST-5; however, trace activity of EST-2 and EST-7 zones could also be detected. It seems that in all tissues of the F1 hybrid there is expression of all the esterase genes from the platfish. The results of the present study are discussed in the comparison to those from other studies on teleost esterases.

Animals

Tissue specificity of the epidermal chalones.

An increasing body of evidence indicates that the rate of cell renewal in labile and stable cell populations is regulated according to a negative feedback principle. Water extracts of such tissues contain mitosis-inhibiting substances (chalones) that probably represent the chemical signals in these cell populations. Tissue specificity is one of the theoretical prereguisites of the chalones but has not been proven in many cases. The present study is an attempt to evaluate the tissue specificity of some chalones, with special emphasis on the chalones found in keratinizing epithelium of the forestomach, and the epithelium of the crypts of jejunum and colon were chosen since they represent stady state systems with a well defined proliferating ppol...

Animals

Enhancing the utility of adeno-associated virus gene transfer through inducible tissue-specific expression.

The ability to regulate both the timing and specificity of gene expression mediated by viral vectors will be important in maximizing its utility. We describe the development of an adeno-associated virus (AAV)-based vector with tissue-specific gene regulation, using the ARGENT dimerizer-inducible system. This two-vector system based on AAV serotype 9 consists of one vector encoding a combination of reporter genes from which expression is directed by a ubiquitous, inducible promoter and a second vector encoding transcription factor domains under the control of either a heart- or liver-specific promoter, which are activated with a small molecule. Administration of the vectors via either systemic or intrapericardial injection demonstrated that the vector system is capable of mediating gene expression that is tissue specific, regulatable, and reproducible over induction cycles. Somatic gene transfer in vivo is being considered in therapeutic applications, although its most substantial value will be in basic applications such as target validation and development of animal models.

Animals

[Tissue specificity of testosterone fixation: demonstrated by ultrastructural immunocytochemistry after cryoultramicrotomy].

Testosterone can be detected by immunocytochemistry on ultrathin slices obtained by cryoultramicrotomy. Testosterone detected by this method is likely bound on a binding site having a high affinity. In order to study the tissue specificity of this binding, testosterone was tested in Rat pituitary gland, liver and adrenal glands. Immunoreactive testosterone was detected in the gonadotropic cells of the pituitary gland, in the hepatocytes. Testosterone was not detected by immunocytochemistry in the pituitary cells other than the gonadotropic cells and in the cells of the medulla of adrenal glands. These data testify in favour of tissue specificity of the testosterone binding.

Adrenal Glands

Steroid receptors in the human prostate. Detection of tissue-specific androgen binding in prostate cancer.

We have searched for tissue-specific binding of 5alpha-androstan-17beta-ol-3-one (5alpha-dihydrotestosterone; 5alpha-DHT) in cytosols prepared from 25 surgically obtained benign prostatic hypertrophy (BPH) samples and in 3 tissue specimens containing prostate cancer cells. The distinction between steroid-receptor complexes and ligand binding to serum sex hormone-binding globulin (SHBG) was facilitated by combination experiments involving both sucrose gradient ultracentrifugation and agar gel electrophoresis. Gradient analysis of a cytosol prepared from a cervical lymph node (CLN) containing metastatic prostate tissue, revealed both 8-S and 4-S forms of high affinity (charcoal stable) 5alpha-[3H]DHT binding. When electrophoresis was performed on gradient fractions from these zones, anodally migrating steroid-receptor complexes were found only in the 8-S peak, the 4-S region containing radioligand bound to cathodally directed SHBG. In similar experiments with two BPH samples heavily invaded with prostate cancer cells only a single 4-S peak of radioligand binding was detected. Its multicomponent nature was uncovered electrophoretically when, in addition to SHBG, saturable, androgen binding molecules appeared anodally. Their incomplete resolution from SHBG on a gradient might have prevented their identification had this been the only method used. In contrast to the cancer-containing tissues, no saturable 5alpha-[3H]-DHT binding, other than that to SHBG, was detected in any of the BPH samples analysed. It is considered that, of the methods currently available, agar gel electrophoresis may be particularly useful for further investigations into the possible multicomponent nature of androgen binding of tissue origin in the human prostate.

Adenocarcinoma

Tissue-specific antibodies against human lung and breast carcinoma dehistonized chromatins.

Tissue-specific antisera against human lung and breast carcinoma dehistonized chromatins were obtained. The specificity of these antisera was determined by complement fixation. In the presence of antiserum against human lung carcinoma, only chromatins from lung carcinoma fixed complement significantly, whereas chromatins isolated from human breast carcinoma, HeLa cells, normal lung tissue, breast tissue, or term placenta were negative (i.e., inactive). In a similar assay with the use of antiserum against dehistonized breast carcinoma chromatins, only breast carcinoma chromatins fixed complement. Immunohistochemical localization of the antigens by the horseradish peroxidase bridge method demonstrated their presence in the nuclei.

Animals

[Tissue-specific decrease and change in the character of DNA methylation in cattle with aging].

The content of 5-methylcytosine (m5C) in DNA of different cow organs is found to decrease in ontogenesis. No other age changes were found in DNA structure and molecular population (GC content, the content of different in the length and the base composition pyrimidine clusters, hyperchromicity value etc.). It is suggested that the age tissue-specific decrease of the m5C content is due to a decrease of the level of DNA methylation, which takes place in heart, kidneys, spleen and brain DNAs and is not observed in lungs. Maximal level of DNA methylation was observed at embryogenesis, when the m5C content in heart DNA decreases (from 1.8 to 1.4 mol. %), then it remains stable up to 1 year old and then sharply decreases with age and reaches 0.94 mol. % at the age of 10 years. The m5C content in liver DNA decreases (from 1.6 to 1.2 mol. %) at the end of embryogenesis and then it does not change. A pronounced decrease of the m5C content was observed in DNAs of cerebral hemispheres, cerebellum, hyppocampus, neurohypophysis and thymus. The decrease of m5C content in thymus DNA is non-random, it concerns only Pu-m5C-Pu, but not long pyrimidine clusters Pu-Pyn-Pu (n greater than or equal to 2). Tissue-specific decrease and the change in pattern of DNA methylation observed are suggested to be a possible mechanism for the age change (distortion) of transcription and cell functioning.

Aging

[Tissue specific antigen of the caudal lobe of the chicken adenohypophysis].

The tissue-specific water-soluble antigen of the chick pituitary gland was revealed by immunochemical analysis. The content of this antigen was found to be predominant in the caudal lobe of the adenohypophysis. The antigen was found from the 13th day of embryogenesis by immunoelectrophoresis and immunofluorescence. Two kinds of the antigen (with high and low relative electrophoretic mobility) were discovered in the chick adenohypophysis. A conclusion was drawn that the adenohypophysis cells differed by the differentiation level.

Age Factors

Genetic control of enzyme expression in Drosophila: a locus influencing tissue specificity of aldehyde oxidase.

A natural genetic variant in Drosophila melanogaster with a highly tissue specific effect on the level of an enzyme (aldehyde oxidase) is described. This variant causes overproduction of the enzyme by a factor of 2- to 3-fold in paragonia (male accessory sex glands) while having no significant effect on the enzyme level in other tissues. This difference is controlled by a single genetic element in the vicinity of the aldehyde oxidase structural gene that operates in a strictly cis-active mode. It is not associated with any change in enzyme primary structure detectable by a variety of physical, chemical and immunochemical tests. The most likely explanation for all of these observations is that the variant defines a cis-active regulatory element adjacent to the structural site.

Aldehyde Oxidoreductases

Partitioned blood pressure polygenic risk reveals differential genetic effects of tissue-specific enhancers and their interactions on cardiovascular disease.

Polygenic risk scores (PRS) compress genome-wide associations into a single predictor, but this aggregation obscures the distinct biological mechanisms through which genetic variation shapes complex traits. Here we introduce a framework that additively decomposes a trait's PRS, without loss of SNP heritability, into independent components defined by the tissue-specific and tissue-agnostic cis-regulatory elements (CREs) in which its variants act. Applied to blood pressure (BP) using ~0.5 million CREs across four BP-relevant tissues (adrenal gland, artery, heart, kidney), the framework reveals that regulatory effects are globally additive across tissues yet locally non-additive, and that the resulting partitioned scores carry pronounced, reproducible heterogeneity in their effects on BP and cardiovascular outcomes. We show this heterogeneity reflects gene-environment interactions, and trace one example to its mechanism: a kidney-CRE-partitioned score is protective against coronary artery disease and myocardial infarction through an interaction between ATP2B1 and antihypertensive medication. Explicitly modeling these interactions improves prediction and transferability, and tissue-focused partitioning increases power to resolve causal genes and reveals genes such as ADAMTS8 with antagonistic effects across BP components. Validated in an independent All of Us cohort, these findings recast the PRS from a blunt aggregate predictor into a mechanistic probe of context-dependent genetic architecture.

Journal Article

[Tissue-specific antigen of chick adenohypophysis appearing at early stages of histotypic differentiation].

The tissue-specific water-soluble antigen characterized by alpha1-globulin electrophoretic mobility was revealed in chick adenohypophysis. The antigen was shown to appear in embryogenesis at early stages of histotypical differentiation of the adenohypophysis by indirect immunofluorescence. The first cells with specific fluorescence were found simultaneously in the cephalic and caudal lobes of 6-day embryo adenohypophysis. The bright patterned fluorescence was observed in all cellular cords of the adenohypophysis by the 8--10th day of the development. This antigen may be used as a common marker for pituitary cell differentiation.

Animals

Control of ketogenesis from amino acids. IV. Tissue specificity in oxidation of leucine, tyrosine, and lysine.

In vitro and in vivo studies were made on the tissue specificity of oxidation of the ketogenic amino acids, leucine, tyrosine, and lysine. In in vitro studies the abilities of slices of various tissues of rats to form 14CO2 from 14C-amino acids were examined. With liver, but not kidney slices, addition of alpha-ketoglutarate was required for the maximum activities with these amino acids. Among the various tissues tested, kidney had the highest activity for lysine oxidation, followed by liver; other tissues showed very low activity. Kidney also had the highest activity for leucine oxidation, followed by diaphragm; liver and adipose tissue had lower activities. Liver had the highest activity for tyrosine oxidation, but kidney also showed considerable activity; other tissues had negligible activity. In in vivo studies the blood flow through the liver or kidney was stopped by ligation of the blood vessels. Then labeled amino acids were injected and recovery of radioactivity in respiratory 14CO2 was measured. In contrast to results with slices, no difference was found in the respiratory 14CO2 when the renal blood vessels were or were not ligated. On the contrary ligation of the hepatic vessels suppressed the oxidations of lysine and tyrosine completely and that of leucine partially. Thus in vivo, lysine and tyrosine seem to be metabolized mainly in the liver, whereas leucine is metabolized mostly in extrahepatic tissues and partly in liver. Use of tissue slices seems to be of only limited value in elucidating the metabolisms of these amino acids.

Adipose Tissue

On the 'clock' mechanism determining the time of tissue-specific enzyme development during ascidian embryogenesis. I. Acetylcholinesterase development in cleavage-arrested embryos.

During ascidian embryogenesis a tissue-specific enzyme, muscle acetylcholinesterase (AChE) may first be detected histochemically in the presumptive muscle cells of the neurula. In order to investigate the 'clock' or counting mechanism that is determining the time when AChE first appears, Whittaker's experiment (1973) has been repeated using eggs of the ascidian, Halocynthia roretzi. Embryos that had been permanently cleavage-arrested with cytochalasin B were able to differentiate AChE in their muscle lineage blastomeres. The time of first AChE occurrence in embryos that had been cleavage-arrested in the 32-cell stage with cytochalasin B was about the same as in normal embryos. This result indicates that the clock is not apparently regulated by the events of cytokinesis. The early gastrulae which had been arrested with colchicine or with colcemid could develop AChE activity, although no histochemically detectable AChE activity was observed in the cleavage-stage embryos that had been arrested with either drug. Therefore the clock does not seem to be controlled by the mitotic cycle of the nucleus. It is suggested that the cycle of DNA replication may be related to the regulation of the clock that is determining the time of development of histospecific protein.

Acetylcholinesterase