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Heat shock regulatory gene rpoH mRNA level increases after heat shock in Escherichia coli.

The Escherichia coli rpoH gene product sigma 32 is essential for the increase in heat shock gene transcription found after exposure of the bacteria to a sudden temperature increase. It is not known how the concentration of active sigma 32 is modulated. We showed that rpoH transcript levels increased after heat shock and that the magnitude of the increase in the level of mRNA was correlated with the magnitude of the temperature shift. The increase in the level of rpoH mRNA was still found in rpoH mutants so the mechanism of induction differed from that of the set of previously identified heat shock genes. The increased concentration of rpoH mRNA should result in a higher level of sigma 32, which is likely to be important for increasing heat shock gene transcription.

Bacterial Proteins↗

Heat shock proteins do not influence wet heat resistance of Bacillus subtilis spores.

Spores of Bacillus subtilis are significantly more resistant to wet heat than are their vegetative cell counterparts. Analysis of the effects of mutations in and the expression of fusions of a coding gene for a thermostable beta-galactosidase to a number of heat shock genes has shown that heat shock proteins play no significant role in the wet heat resistance of B. subtilis spores.

Bacillus subtilis↗

Cellular localization of Drosophila 83-kilodalton heat shock protein in normal, heat-shocked, and recovering cultured cells with a specific antibody.

To gain insight on the possible functions of heat shock proteins (hsp's) in Drosophila, we have purified the 83-kilodalton hsp (hsp 83) from cultured cells and studied its intracellular localization by immunofluorescence in normal, heat-shocked, and recovering cells. The specificity of the antibody was assessed by one- and two-dimensional gel immunoblotting and by partial proteolytic digestion. The anti-hsp 83 antibody does not show any significant cross-reactivity with hsp's of different avian or mammalian cell lines, but cross-reacts with hsp's of similar molecular masses in other dipteran insects. The partial proteolytic peptide maps of Drosophila hsp 83 differ from those of mouse hsp 89 and chicken hsp 84. Immunoblotting of Drosophila Kc cells heat shocked at different temperatures indicates a maximal expression of hsp 83 at 33 degrees C. By immunofluorescence, hsp 83 is shown to have a strictly cytoplasmic localization. In unstressed cells, it is distributed in the entire cytoplasm with a slight enrichment in the perinuclear region. After heat shock, it seems to concentrate at the cell periphery close to the plasma membrane and it gradually redistributes to the whole cytoplasm during cellular recovery at normal temperatures.

Animals↗

Do heat shock proteins play a role in Graves' disease? Heat shock protein-specific T-cells from Graves' disease thyroids do not recognize thyroid epithelial cells.

Thyroid-derived T-cells from patients with Graves' disease were analyzed for their reactivity to recombinant heat shock proteins (hsp) and autologous thyroid epithelial cells (TEC). Five of six uncloned T-cell lines responded to stimulation with recombinant mycobacterial 71-kilodalton (kDa) hsp and cross-reacted with the corresponding amoebial and human proteins. Only one line reacted with recombinant 65-kDa hsp. Thyroid-derived T-cell lines also showed a proliferative response to TEC, which could be increased in four of the lines, when hsp expression was induced in thyroid cells by heat stress before the initiation of coculture. Clonal specificity analysis of thyroid-derived T-cell clones, however, demonstrated that distinct T-cells were responsible for the recognition of recombinant hsp and TEC. None of the clones responsive to recombinant hsp recognized TEC, whereas TEC-responsive clones did not react with recombinant hsp. Interestingly, the response of the majority of TEC-reactive clones could be dramatically increased when heat-shocked TEC were used as stimulator cells. These results suggest that T-cells specific for hsp of the 70- or 60-kDa families do not recognize TEC in the autoimmune thyroid gland. Heat shock-inducible proteins may, however, still play a role in the autoimmune process by facilitating the presentation of thyroid-specific autoantigen(s) to autoreactive T-cells.

Adult↗

Prompt heat-shock and heat-shifted proteins associated with the nuclear matrix-intermediate filament scaffold in Drosophila melanogaster cells.

Elevated temperatures induced the synthesis of several new proteins in Drosophila melanogaster cells. Besides the conventional heat shock (HS) proteins, another set of temperature-induced proteins has been found. These latter resemble the prompt HS proteins of mammalian cells. The prompt HS proteins of Drosophila differ from the well-known conventional HS proteins in the following properties: (1) synthesis of the prompt HS proteins is insensitive to the transcription inhibitor actinomycin D, which blocks the appearance of conventional HS proteins; (2) induction of the prompt HS proteins requires a significantly higher temperature than conventional HS proteins; (3) prompt HS proteins associate strictly with the nuclear matrix-intermediate filament complex (NM-IF), while the conventional HS proteins are found in all subcellular fractions; (4) prompt HS proteins of Drosophila are induced by high temperature alone while the conventional HS proteins are also produced by a variety of stress conditions. Resinless-section electron micrographs show an altered nuclear matrix morphology in heat-shocked cells. The nuclear matrix fibers are altered in spatial distribution and have much additional electron-dense material. This added material probably reflects the soluble proteins shifted into the nuclear matrix at high temperature. The prompt HS proteins can be distinguished clearly from heat-shifted proteins by several criteria. Also, the prompt HS proteins are distinct from the heat-insensitive viral proteins of a persistent virus (HPS-1).

Animals↗

Expression of the constitutive and inducible forms of heat shock protein 70 in human proximal tubule cells exposed to heat, sodium arsenite, and CdCl(2).

We determined the expression of the constitutive (hsc 70) and inducible (hsp 70) forms of heat shock protein 70 mRNA and protein in human proximal tubule (HPT) cells exposed to lethal and sublethal concentrations of Cd(+2) under both acute and extended conditions of exposure. The HPT cells exhibited the classic heat shock response when subjected to a physical (heat) or chemical stress (sodium arsenite); hsc 70 mRNA and protein levels were constant or slightly increased, whereas hsp 70 mRNA and protein were greatly elevated. Acute exposure to 53.4 microM CdCl(2) for 4 hr failed to increase either hsc 70 mRNA or protein, a finding similar to that observed under classic conditions of stress. However, under identical conditions of acute exposure to Cd(2+), the expected increase in hsp 70 protein level was suppressed as compared to that found under classic conditions of physical or chemical stress. The decrease in hsp 70 protein level correlated to the reduced expression of mRNA from the hsp 70B gene. The expression of mRNA from the hsp 70A and hsp 70C genes was similar to that found when the cells were treated with heat shock or sodium arsenite. We modeled an extended exposure to Cd(2+) by treating the cells continuously with Cd(2+) at both lethal and sublethal levels over a 16-day time course. Chronic exposure to Cd(2+) failed to increase either hsc 70 mRNA or protein levels in the HPT cells at a nonlethal dosage level and decreased hsc 70 mRNA and protein levels late in the time course of lethal exposure. Under identical conditions, the expression of hsp 70 protein remained at basal levels that were only marginally detectable throughout the time course. Hsp 70A and hsp 70C mRNA levels were unaltered by extended exposure to Cd(2+), and hsp 70B mRNA was not detected during the 16-day time course. Cd(2+) is a poor inducer of hsc 70 and hsp 70 in the proximal tubule under both acute and long-term exposure. These results reinforce the fact that the expression of hsp 70 protein does not result from the transcription of a single gene, but is derived from what may be a complex interplay of several underlying genes.

Arsenites↗

Heat shock protein 70, heat shock protein 32, and vascular endothelial growth factor production and their effects on lipopolysaccharide-induced apoptosis in porcine aortic endothelial cells.

Lipopolysaccharide (LPS) is a highly proactive molecule that causes in vivo a systemic inflammatory response syndrome and activates in vitro the inflammatory pathway in different cellular types, including endothelial cells (EC). Because the proinflammatory status could lead to EC injury and apoptosis, the expression of proinflammatory genes must be finely regulated through the induction of protective genes. This study aimed at determining whether an LPS exposure is effective in inducing apoptosis in primary cultures of porcine aortic endothelial cells and in stimulating heat shock protein (Hsp)70 and Hsp32 production as well as vascular endothelial growth factor (VEGF) secretion. Cells between third and eighth passage were exposed to 10 microg/mL LPS for 1, 7, 15, and 24 hours (time-course experiments) or to 1, 10, and 100 microg/mL LPS for 7 and 15 hours (dose-response experiments). Apoptosis was not affected by 1 microg/mL LPS but significantly increased in a dose-dependent manner with the highest LPS doses. Furthermore, apoptosis rate increased only till 15 hours of LPS exposure. LPS stimulated VEGF secretion in a dose-dependent manner; its effect became significant after 7 hours and reached a plateau after 15 hours. Both Hsp70 and Hsp32 expressions were induced by LPS in a dose-dependent manner after 7 hours. Subsequent studies were addressed to evaluate the protective role of Hsp32, Hsp70, and VEGF. Hemin, an Hsp32 inducer (5, 20, 50 microM), and recombinant VEGF (100 and 200 ng/mL), were added to the culture 2 hours before LPS (10 microg/mL for 24 hours); to induce Hsp70 expression, cells were heat shocked (42 degrees C for 1 hour) 15 hours before LPS (10 microg/mL for 24 hours). Hemin exposure upregulated Hsp32 expression in a dose-dependent manner and protected cells against LPS-induced apoptosis. Heat shock (HS) stimulated Hsp70 expression but failed to reduce LPS-induced apoptosis; VEGF addition did not protect cells against LPS-induced apoptosis at any dose tested. Nevertheless, when treatments were associated, a reduction of LPS-induced apoptosis was always observed; the reduction was maximal when all the treatments (HS + Hemin + VEGF) were associated. In conclusion, this study demonstrates that LPS is effective in evoking "the heat shock response" with an increase of nonspecific protective molecules (namely Hsp70 and Hsp32) and of VEGF, a specific EC growth factor. The protective role of Hsp32 was also demonstrated. Further investigations are required to clarify the synergic effect of Hsp32, Hsp70, and VEGF, thus elucidating the possible interaction between these molecules.

Animals↗

Heat-induced unresponsiveness of heat shock gene expression is regulated at the transcriptional level.

The induction kinetics of the heat shock proteins hsp68, hsp70 and hsp84 were studied. Studies on hsp mRNA levels and protein synthetic rates, with or without the presence of actinomycin D, showed that regulation took place at the transcriptional level. Hsp mRNA induction was followed by a transient state of unresponsiveness. At the time point where the induced hsp mRNAs were decreasing again, hsp68, hsp70 and hsp84 mRNA could not be induced by a second, identical, heat shock. Hsp68 mRNA could be induced again 12-16 h after the first heat shock. Apparently, this state really seems to be a state of reduced sensitivity, since a higher heat dose could partially overcome this unresponsiveness.

Animals↗

Heat stress in protective clothing: validation of a computer model and the heat-humidity index (HHI).

Ability to work while wearing protective clothing is often limited by rising body temperature. Peterson analyzed the combined effects of heat, humidity and workload using the Texas Model of Thermoregulation and suggested that environmental heat load imposed on a person wearing heavy, semipermeable clothing could be predicted using the Heat-Humidity Index (HHI = 0.5 Tdb + 0.5 Twb), where Tdb = dry bulb temperature and Twb = wet bulb temperature. Our study was designed to: 1) test the validity of this computer model; and 2) evaluate the applicability of the HHI to heavily clothed subjects working in a variety of thermal environments. Nine men wearing chemical defense clothing were each studied under eight conditions over the range Tdb = 20 - 40 degrees C, Tbg = Tdb + 5 degrees C, relative humidity = 9-75%, and oxygen uptake = 14-27 ml.kg-1 x min-1. Variables analyzed included tolerance time (TT), rectal temperature (Tre), skin temperature, heart rate (HR), weight loss, sweat rate, evaporation rate, and evaporative efficiency. Experiments were designed to last 30-180 min, and continued until Tre = 39 degrees C except when subjective tolerance limits occurred first (12 of 72 experiments). The observed time to reach Tre = 39 degrees C bracketed the predicted time in the more severe conditions, but the model seriously underestimated heat storage in the milder conditions.(ABSTRACT TRUNCATED AT 250 WORDS)

Acclimatization↗

Circadian rhythm of heat resistance in cotton seedlings: synthesis of heat-shock proteins.

Cotton (Gossypium hirsutum L. cv. Deltapine 50) seedlings grown under light-dark cycles of 12:12 h at 33 degrees C showed rhythmic changes in their resistance to heat shock of 53 degrees C for 40 min. The resistance was maximal at the middle of the light period and declined toward the end of the light period. One more peak of resistance developed in the middle of the dark period and declined toward the end of the dark period. Rhythmic changes in heat resistance persisted under continuous light for 3 cycles, indicating a circadian control. Under continuous light only one phase of resistance developed, lasting from the middle of the subjective night to the middle of the subjective day. The major heat shock proteins (HSPs) synthesized upon 30-min exposure to 40 degrees C, 49 degrees C or 53 degrees C were of 115, 89, 73, and 19 kDa. Their rate of synthesis depended on the inducing temperature, on previous exposure to high temperature and on the time in the light-dark cycle. The time dependency of the induction of certain HSPs persisted under continuous light, indicating a circadian control. No positive correlations was found between the rhythmic changes in heat resistance and the rhythmic changes in the synthesis of any HSP.

Circadian Rhythm↗

[Heat sensitivity of human cancer cells and abnormal expression of heat shock protein 70].

We investigated the heat-sensitivities of human normal and cancer cells at different growth conditions in vitro. We found no difference in sensitivities between normal and cancer cells at growing condition. Normal cells at confluence, however, reduced their heat-sensitivity 5-6 times than at growing condition, while the cancer cells did not. Analysis by monoclonal antibodies for hsp 70 showed the differential staining patterns between normal and cancer cells after treatment with heat (43 degrees C for 2 hours). The constitutive expression levels of hsp 70 in cancer cells were 2-3 times higher than those in normal cells. However, the degrees of hsp 70 induction by heat shock treatment in cancer cells were lower than those in normal cells. These results suggest that cancer cells may be abnormal in expression mechanisms of hsp 70.

Cell Division↗

Differentiation of mouse embryonal carcinoma cells PCC4 by heat shock and the kinetics of induction of heat shock proteins.

Heat shock to embryonal carcinoma cells PCC4 at 45 degrees C for 30 min resulted in the differentiation of cells although heat shock response was induced on exposure to 42 degrees C for 60 min. Differentiated cells were large and well spread with reduced nuclear/cytoplasmic ratios as compared to undifferentiated cells. Change in cell morphology was associated with the disappearance and appearance of stage specific embryonic antigens 1 and 3 respectively. We also found a change in intracellular pH in PCC4 cells within 30 min of heat shock as measured by the change in fluorescence intensity of a probe incorporated into cells during heat shock.

Animals↗

Stabilization of protein synthesis in thermotolerant cells during heat shock. Association of heat shock protein-72 with ribosomal subunits of polysomes.

Thermotolerance is defined as the capacity of cells, following a cycle of stress and recovery, to survive a second stress which would otherwise be lethal. Whereas this is a well-documented phenomenon, the mechanisms underlying this protective event remain to be elucidated. Protection of protein synthesis appears to be one of the components in the induction of thermotolerance termed "translational thermotolerance." In the present study we show that translational thermotolerance is not the result of an increase in the concentration of cellular transcripts or the stabilization of preexisting messages, nor the preservation of the rate of amino acid uptake, synthesis of aminoacyl-tRNA, or protection from degradation of newly synthesized polypeptides. These results suggest that translational thermotolerance is the consequence of stabilization of translational initiation and/or polypeptide chain elongation during heat shock. We found that heat shock protein (hsp)-72, the major inducible form of the hsp-70 family of heat shock proteins, is associated with ribosomal subunits in polysomes of thermotolerant cells during heat shock. We hypothesize that such interaction is responsible for rescuing translational initiation and/or polypeptide chain elongation in thermotolerant cells during a subsequent stress. It is possible that hsp-72 on the ribosome is "waiting" for the nascent polypeptide to emerge from the ribosome. Such interaction may maintain the growing polypeptide in solution during stress, allowing elongation to continue, and maintaining a constant rate of translation during the stress.

Adaptation, Biological↗

Effect of overexpression of the small heat shock protein HSP27 on the heat and drug sensitivities of human testis tumor cells.

In contrast to most metastatic cancers, testicular germ cell tumors are cured in more than 80% of patients using cisplatin-based combination chemotherapy. Testis tumor cells in vitro retain their sensitivity to chemotherapeutic drugs, radiation, and other stresses, such as heat shock. Having shown that this is associated with low constitutive levels of heat shock protein (HSP) 27, we determined the effect of overexpression of HSP27 on the heat and drug sensitivities of a human testis tumor cell line, 833K. Cells were cotransfected with plasmids containing a neomycin resistance gene and the full-length human HSP27 gene, and four clones that overexpressed HSP27 by factors of 3.7-38.3-fold compared with the parental cells were selected. The overexpressing cells were more resistant to heat shock, cisplatin, and doxorubicin, and this was associated with modest increases (17-30%) in population doubling times and a small reduction in the number of S-phase cells. These results suggest that the low constitutive levels of HSP27 in testis tumor cells may contribute to the sensitivity of testicular germ cell tumors to chemotherapy, and that targeting HSP27 may improve response rates in other types of cancer.

Biological Transport↗

During ischemia-reperfusion in rat kidneys, heat shock response is not regulated by expressional changes of heat shock factor 1.

Ischemia-reperfusion injury is known to induce the inducible form of the 70 kDa heat shock protein HSP70i (or HSP72) mainly via rapid activation of heat shock transcription factor 1 (HSF1). However, little is known about the regulation of the HSF1 gene. We therefore studied the time course of HSF1 mRNA transcription and its relation to the expression pattern of the HSP70i mRNA in the renal cortex, this being the most vulnerable and functionally most important part of the kidney, after different periods of unilateral renal ischemia (10-180 min) and reperfusion (up to 60 min) in male Wistar rats (10 weeks old). Immediately after ischemia there was a significant induction of HSP70i genes. While HSP70i expression constantly increased (up to 4-fold) during reperfusion, even to a higher extent with prolongation of ischemia, HSF1 mRNA remained constitutively expressed under all conditions. Thus, we conclude that during ischemia-reperfusion in rat kidneys, the heat shock response is regulated by other means than expressional changes of HSF1.

Animals↗

Constitutive heat shock protein 70 (HSC70) expression in rainbow trout hepatocytes: effect of heat shock and heavy metal exposure.

The 70-kDa family of heat shock proteins plays an important role as molecular chaperones in unstressed and stressed cells. The constitutive member of the 70 family (hsc70) is crucial for the chaperoning function of unstressed cells, whereas the inducible form (hsp70) is important for allowing cells to cope with acute stressor insult, especially those affecting the protein machinery. In fish, the role of hsc70 in the cellular stress response process is less clear primarily because of the lack of a fish-specific antibody for hsc70 detection. In this study, we purified hsc70 to homogeneity from trout liver using a three-step purification protocol with differential centrifugation, ATP-agarose affinity chromatography and electroelution. Polyclonal antibodies to trout hsc70 generated in rabbits cross-reacted strongly with both purified trout hsc70 protein and also purified recombinant bovine hsc70. Two-dimensional electrophoresis followed by Western blotting confirmed that the isoelectric point of rainbow trout hsc70 was more acidic than hsp70. Using this antibody, we detected hsc70 content in the liver, heart, gill and skeletal muscle of unstressed rainbow trout. Primary cultures of trout hepatocytes subjected to a heat shock (+15 degrees C for 1 h) or exposed to either CuSO(4) (200 microM for 24 h), CdCl(2) (10 microM for 24 h) or NaAsO(2) (50 microM for 1 h) resulted in higher hsp70 accumulation over a 24-h period. However, hsc70 content showed no change with either heat shock or heavy metal exposure suggesting that hsc70 is not modulated by sublethal acute stressors in trout hepatocytes. Taken together, we have for the first time generated polyclonal antibodies specific to rainbow trout hsc70 and this antibody will allow for the characterization of the role of hsc70 in the cellular stress response process in fish.

Animals↗

Induction of heat shock protein 72 in the failing heart is attenuated after an exposure to heat shock.

Induction of heat shock protein (Hsp) 72 in the right ventricular muscle of the rat with heart failure following acute myocardial infarction (AMI) was examined. AMI was induced by the left coronary artery ligation (CAL). The animals at the 8th, but not 2nd, week after CAL revealed a decrease in cardiac output index (COI), suggesting that heart failure had developed by 8 weeks after CAL. Increases in the right ventricular developed pressure and the ratios of right ventricle/body weight and lung/body weight at the 2nd and 8th weeks showed the development of the right ventricular hypertrophy. After measurement of hemodynamic parameters, the hearts isolated from animals at the 2nd and 8th weeks after CAL (2w- and 8w-CAL hearts, respectively) were perfused and subjected to heat shock (at 42 degrees C, for 15 min) followed by 6-h perfusion. At the end of perfusion, Hsp72 content in the left ventricle without infarct area (viable LV) and the right ventricle (RV) was determined by the Western immunoblotting method. The production of myocardial Hsp72 in the viable LV and RV of the 2w-CAL heart increased after an exposure to heat shock. In contrast, induction of Hsp72 in the viable LV and RV of the 8w-CAL heart was blunted. The results suggest that the development of heart failure following AMI may result in a decrease in the ability for Hsp72 induction not only in the viable LV but also in the RV, leading to contractile dysfunction of the heart.

Animals↗

Heat-shock cognate 70 is required for the activation of heat-shock factor 1 in mammalian cells.

HSF1 (heat-shock factor 1) plays an essential role in mediating the appropriate cellular response to diverse forms of physiological stresses. However, it is not clear how HSF1 is regulated by interacting proteins under normal and stressful conditions. In the present study, Hsc70 (heat-shock cognate 70) was identified as a HSF1-interacting protein using the TAP (tandem affinity purification) system and MS. HSF1 can interact with Hsc70 in vivo and directly in vitro. Interestingly, Hsc70 is required for the regulation of HSF1 during heat stress and subsequent target gene expression in mammalian cells. Moreover, cells transfected with siRNAs (small interfering RNAs) targeted to Hsc70 showed greatly decreased HSF1 activation with expression of HSF1 target genes being dramatically reduced. Finally, loss of Hsc70 expression in cells resulted in an increase in stress-induced apoptosis. These results indicate that Hsc70 is a necessary and critical regulator of HSF1 activities.

Animals↗