Effect of heat-shock duration and zygote age on tetraploid induction for triploid broodstock production in platinum koi ( Cyprinus rubrofuscus )
The koi fish ( Cyprinus rubrofuscus ) is an ornamental freshwater species valued for its vibrant body patterns, colors, and high market price. Despite extensive breeding efforts, the demand for koi fry remains unmet. Advances in biotechnology, such as chromosome manipulation, offer a promising solution to increase production yields. This study evaluated the effectiveness of tetraploid induction in koi through heat shock treatment, testing different zygote ages and shock durations. The highest proportion of tetraploids (86.6%) was achieved with a heat shock of 39 °C for 2.5 minutes. When considering zygote age, heat shock applied at 31 minutes post fertilization (mpf) produced 66.7% tetraploids, while treatment at 27 mpf yielded a comparatively higher proportion than other age groups. Tetraploidy was confirmed through cytogenetic analysis, ensuring accurate identification of induced individuals. These findings provide a practical protocol for koi breeders to produce tetraploid broodstock, which can be used for triploid production or to enhance genetic resources in ornamental fish aquaculture.
- Research Article
449
- 10.1074/jbc.m409267200
- Dec 1, 2004
- Journal of Biological Chemistry
Alterations in protein folding and the regulation of conformational states have become increasingly important to the functionality of key molecules in signaling, cell growth, and cell death. Molecular chaperones, because of their properties in protein quality control, afford conformational flexibility to proteins and serve to integrate stress-signaling events that influence aging and a range of diseases including cancer, cystic fibrosis, amyloidoses, and neurodegenerative diseases. We describe here characteristics of celastrol, a quinone methide triterpene and an active component from Chinese herbal medicine identified in a screen of bioactive small molecules that activates the human heat shock response. From a structure/function examination, the celastrol structure is remarkably specific and activates heat shock transcription factor 1 (HSF1) with kinetics similar to those of heat stress, as determined by the induction of HSF1 DNA binding, hyperphosphorylation of HSF1, and expression of chaperone genes. Celastrol can activate heat shock gene transcription synergistically with other stresses and exhibits cytoprotection against subsequent exposures to other forms of lethal cell stress. These results suggest that celastrols exhibit promise as a new class of pharmacologically active regulators of the heat shock response.
- Research Article
241
- 10.1074/jbc.m607556200
- Mar 1, 2007
- Journal of Biological Chemistry
The heat shock response is a defense reaction activated by proteotoxic damage induced by physiological or environmental stress. Cells respond to the proteotoxic damage by elevated expression of heat shock proteins (Hsps) that function as molecular chaperones and maintain the vital homeostasis of protein folds. Heat shock factors (HSFs) are the main transcriptional regulators of the stress-induced expression of hsp genes. Mammalian HSF1 was originally identified as the transcriptional regulator of the heat shock response, whereas HSF2 has not been implicated a role in the stress response. Previously, we and others have demonstrated that HSF1 and HSF2 interact through their trimerization domains, but the functional consequence of this interaction remained unclear. We have now demonstrated on chromatin that both HSF1 and HSF2 were able to bind the hsp70 promoter not only in response to heat shock but also during hemin-induced differentiation of K562 erythroleukemia cells. In both cases an intact HSF1 was required in order to reach maximal levels of promoter occupancy, suggesting that HSF1 influences the DNA binding activity of HSF2. The functional consequence of the HSF1-HSF2 interplay was demonstrated by real-time reverse transcription-PCR analyses, which showed that HSF2 was able to modulate the HSF1-mediated expression of major hsp genes. Our results reveal, contrary to the predominant model, that HSF2 indeed participates in the transcriptional regulation of the heat shock response.
- Peer Review Report
- 10.7554/elife.52589.sa1
- Dec 11, 2019
Alzheimer's disease is a progressive condition that damages the brain over time. The cause is not clear, but a toxic molecule called Amyloid-β peptide seems to play a part. It builds up in the brains of people with Alzheimer's disease, forming hard clumps called plaques. Yet, though the plaques are a hallmark of the disease, experimental treatments designed to break them down do not seem to help. This raises the question – do Amyloid-β plaques actually cause Alzheimer's disease? Answering this question is not easy. One way to study the effect of amyloid plaques is to inject clumps of Amyloid-β peptides into model organisms. This triggers Alzheimer's-like brain damage, but it is not clear why. It remains difficult to tell the difference between the damage caused by the injected Amyloid-β peptides and the damage caused by the solid plaques that they form. For this, researchers need a way to trigger plaque formation directly inside animal brains. This would make it possible to test the effects of plaque-targeting treatments, like the drug lithium. Optogenetics is a technique that uses light to control molecules in living animals. Hsien, Kaur et al. have now used this approach to trigger plaque formation by fusing light-sensitive proteins to Amyloid-β peptides in worms, fruit flies and zebrafish. This meant that the peptides clumped together to form plaques whenever the animals were exposed to blue light. This revealed that, while both the Amyloid-β peptides and the plaques caused damage, the plaques were much more toxic. They damaged cell metabolism and caused tissue loss that resembled late Alzheimer's disease in humans. To find out whether it was possible to test Alzheimer's treatments in these animals, Hsien, Kaur et al. treated them with the drug, lithium. This increased their lifespan, reversing some of the damage caused by the plaques. Alzheimer's disease affects more than 46.8 million people worldwide and is the sixth leading cause of death in the USA. But, despite over 50 years of research, there is no cure. This new plaque-formation technique allows researchers to study the effects of amyloid plaques in living animals, providing a new way to test Alzheimer's treatments. This could be of particular help in studies of experimental drugs that aim to reduce plaque formation.
- Research Article
6
- 10.1152/ajpheart.00773.2007
- Aug 31, 2007
- American Journal of Physiology-Heart and Circulatory Physiology
One of the proposed mechanisms for the myocardial protective effects of heat shock (HS) treatment has been a reduction in the inflammatory response. The objective of the present study was to evaluate the impact of HS treatment in an established model of polymorphonuclear cell (PMN) migration following myocardial infarction (MI). Isolated purified PMNs (10 x 10(6) cells) labeled with (51)Cr were injected into Lewis rats following a left thoracotomy and ligation of the left anterior descending coronary artery causing MI. Two experimental groups of animals were created: MI group (n = 11) and HS+MI group (n = 7). HS treatment consisted of an elevation in core temperature to 42 degrees C for 15 min 24 h prior to MI. An additional group of control animals underwent sham thoracotomy (n = 5). All animals were euthanized at 24 h after MI, and gamma counts were obtained to estimate PMN migration. Myocardial injury was confirmed in all experimental animals (histology and echocardiography). The serum troponin I and infarct size (triphenyltetrazolium chloride) were similar in both groups. Labeled PMN migration was significantly higher in HS+MI animals (14.3 x 10(4) +/- 3.7 x 10(4) PMN) compared with MI group (9.5 x 10(4) +/- 3.6 x 10(4); P = 0.01), suggesting increased PMN migration as a result of HS treatment. HS treatment did not affect PMN migration to positive skin control sites (LPS). ICAM-1 myocardial expression was not significantly increased in HS+MI compared with MI group. In summary, HS treatment results in increased PMN migration into myocardium following MI independent of ICAM-1. These findings suggest that the proposed cardioprotective effect of HS may not be entirely due to a downregulation of myocardial inflammation as previously proposed.
- Research Article
- 10.15421/20144-20
- Jun 13, 2014
- Ukrainian Journal of Ecology
COMPARATIVE ANALYSIS OF PLASTIC ATTRIBUTES OF DIFFERENT CARP KOI FORMS (CYPRINUS CARPIO KOI)
- Research Article
45
- 10.1379/csc-1r.1
- Mar 1, 2004
- Cell stress & chaperones
Heat shock treatment protects against angiotensin II-induced hypertension and inflammation in aorta.
- Research Article
11
- 10.1016/s0925-5214(00)00174-5
- Feb 1, 2001
- Postharvest Biology and Technology
Effect of heat shock and quarantine cold treatment with a warm temperature spike on survival of Mediterranean fruit fly eggs and fruit quality in Hawaii-grown ‘Sharwil’ avocado
- Research Article
38
- 10.1016/j.ijfoodmicro.2009.06.005
- Jun 22, 2009
- International Journal of Food Microbiology
The effect of temperature and length of heat shock treatment on the thermal tolerance and cell leakage of Cronobacter sakazakii BCRC 13988
- Research Article
40
- 10.1128/mcb.6.1.90-96.1986
- Jan 1, 1986
- Molecular and Cellular Biology
Two Saccharomyces cerevisiae genes isolated in a differential hybridization screening for DNA damage regulation (DDR genes) were also transcriptionally regulated by heat shock treatment. A 0.45-kilobase transcript homologous to the DDRA2 gene and a 1.25-kilobase transcript homologous to the DDR48 gene accumulated after exposure of cells to 4-nitroquinoline-1-oxide (NQO; 1 to 1.5 microgram/ml) or brief heat shock (20 min at 37 degrees C). The DDRA2 transcript, which was undetectable in untreated cells, was induced to high levels by these treatments, and the DDR48 transcript increased more than 10-fold as demonstrated by Northern hybridization analysis. Two findings argue that dual regulation of stress-responsive genes is not common in S. cerevisiae. First, two members of the heat shock-inducible hsp70 family of S. cerevisiae, YG100 and YG102, were not induced by exposure to NQO. Second, at least one other DNA-damage-inducible gene, DIN1, was not regulated by heat shock treatment. We examined the structure of the induced RNA homologous to DDRA2 after heat shock and NQO treatments by S1 nuclease protection experiments. Our results demonstrated that the DDRA2 transcript initiates equally frequently at two sites separated by 5 base pairs. Both transcriptional start sites were utilized when cells were exposed to either NQO or heat shock treatment. These results indicate that DDRA2 and DDR48 are members of a unique dually regulated stress-responsive family of genes in S. cerevisiae.
- Research Article
100
- 10.1128/mcb.6.1.90
- Jan 1, 1986
- Molecular and Cellular Biology
Two Saccharomyces cerevisiae genes isolated in a differential hybridization screening for DNA damage regulation (DDR genes) were also transcriptionally regulated by heat shock treatment. A 0.45-kilobase transcript homologous to the DDRA2 gene and a 1.25-kilobase transcript homologous to the DDR48 gene accumulated after exposure of cells to 4-nitroquinoline-1-oxide (NQO; 1 to 1.5 microgram/ml) or brief heat shock (20 min at 37 degrees C). The DDRA2 transcript, which was undetectable in untreated cells, was induced to high levels by these treatments, and the DDR48 transcript increased more than 10-fold as demonstrated by Northern hybridization analysis. Two findings argue that dual regulation of stress-responsive genes is not common in S. cerevisiae. First, two members of the heat shock-inducible hsp70 family of S. cerevisiae, YG100 and YG102, were not induced by exposure to NQO. Second, at least one other DNA-damage-inducible gene, DIN1, was not regulated by heat shock treatment. We examined the structure of the induced RNA homologous to DDRA2 after heat shock and NQO treatments by S1 nuclease protection experiments. Our results demonstrated that the DDRA2 transcript initiates equally frequently at two sites separated by 5 base pairs. Both transcriptional start sites were utilized when cells were exposed to either NQO or heat shock treatment. These results indicate that DDRA2 and DDR48 are members of a unique dually regulated stress-responsive family of genes in S. cerevisiae.
- Research Article
71
- 10.1074/jbc.m112.353714
- Aug 1, 2012
- Journal of Biological Chemistry
The heat shock response (HSR) is responsible for maintaining cellular and organismal health through the regulation of proteostasis. Recent data demonstrating that the mammalian HSR is regulated by SIRT1 suggest that this response may be under metabolic control. To test this hypothesis, we have determined the effect of caloric restriction in Caenorhabditis elegans on activation of the HSR and have found a synergistic effect on the induction of hsp70 gene expression. The homolog of mammalian SIRT1 in C. elegans is Sir2.1. Using a mutated C. elegans strain with a sir2.1 deletion, we show that heat shock and caloric restriction cooperate to promote increased survivability and fitness in a sir2.1-dependent manner. Finally, we show that caloric restriction increases the ability of heat shock to preserve movement in a polyglutamine toxicity neurodegenerative disease model and that this effect is dependent on sir2.1.
- Research Article
47
- 10.1016/j.postharvbio.2009.09.001
- Oct 25, 2009
- Postharvest Biology and Technology
Expression of sHSP genes as affected by heat shock and cold acclimation in relation to chilling tolerance in plum fruit
- Research Article
24
- 10.1038/sj.mt.6300354
- Feb 1, 2008
- Molecular Therapy
Lentivirus Mediated HO-1 Gene Transfer Enhances Myogenic Precursor Cell Survival After Autologous Transplantation in Pig
- Research Article
19
- 10.1016/j.anireprosci.2005.12.005
- Jan 18, 2006
- Animal Reproduction Science
Expression of heat shock protein70 in pig oocytes: Heat shock response during oocyte growth
- Research Article
18
- 10.1007/s00011-005-1360-y
- Aug 1, 2005
- Inflammation Research
Heat shock (HS) treatment (42 degrees C for 15 min) and the expression of heat shock proteins (Hsps) protect against angiotensin (Ang) II-induced inflammation in aorta and heart by suppressing the activation of the pro-inflammatory transcription factor NF-kappaB. In this study we examined pro-inflammatory transcription factors SP-1, AP-1 and an anti-inflammatory cytokine transcriptional repressor, Oct-1, DNA-binding activities after chronic Ang II infusion and the effect of HS treatment on these pathways in heart. HS treatment was administered 24 hr before initiation of Ang II infusion to male Sprague-Dawley rats. Systolic blood pressure was measured by tail-cuff plethysmography, expression of heat shock proteins was monitored by Western analysis and DNA-binding activities of SP-1, AP-1 and Oct-1 were determined by electrophoretic mobility shift assay. Ang II infusion induced a progressive increase in systolic blood pressure that was suppressed by the heat shock treatment. Following heat shock treatment, Hsp70 and Hsp27 were expressed at elevated levels. The Ang II-induced activation of SP-1 and AP-1 were significantly suppressed by HS treatment. In addition, HS increased Oct-1 activity that was suppressed by Ang II infusion. These data suggest that heat shock suppresses inflammation by differentially regulating pro-inflammatory and anti-inflammatory cell signaling pathways.