Heat acclimation confers acquired thermotolerance (AT), and heat-acclimation memory (HAM) is the maintenance of AT for some time. In Arabidopsis and rice, the heat-stress-associated 32-kDa protein (HSA32) and the protein disaggregase heat shock protein101 (HSP101) form a positive feedback loop at the protein level to maintain AT; HSA32 mitigates HSP101 degradation, and HSP101 positively regulates the accumulation of HSA32. Here, we report the underpinning mechanism regarding how HSP101 affects the HSA32 level in Arabidopsis. We found that, without HSP101, nascent HSA32 was rapidly degraded, and the proteasome inhibitor, bortezomib, inhibited the degradation. In response to heat stress, the nascent HSA32-GFP fusion protein was present in liquid condensates and diffused in the cytosol after returning to non-stress temperature. Proximity labeling with HSA32-TurboID identified HSP101 and five other protein chaperones and co-chaperones as the primary interactors. Disturbing the interaction between HSA32 and HSP101 destabilized HSA32 and compromised HAM. HSA32 is predicted as a TIM-barrel protein with three intrinsically disordered regions of high aggregation propensity. Recombinant HSA32 expressed in E. coli was partitioned into insoluble fractions, suggesting that HSA32 is aggregation-prone. Our findings highlight how the interplay between an aggregation-prone protein and a protein disaggregase can maintain plant stress memory. ### Competing Interest Statement The authors have declared no competing interest.
The expression of heat shock proteins (Hsps) induced by nonlethal heat treatment confers acquired thermotolerance (AT) to organisms against subsequent challenges of otherwise lethal temperature. After the stress signal is removed, AT gradually decays, with decreased Hsps during recovery. AT of sufficient duration is critical for sessile organisms such as plants to survive repeated heat stress in their environment, but little is known regarding its regulation. To identify potential regulatory components, we took a reverse genetics approach by screening for Arabidopsis (Arabidopsis thaliana) T-DNA insertion mutants that show decreased thermotolerance after a long recovery (2 d) under nonstress conditions following an acclimation heat treatment. Among the tested mutants corresponding to 48 heat-induced genes, only the heat shock transcription factor HsfA2 knockout mutant showed an obvious phenotype. Following pretreatment at 37 degrees C, the mutant line was more sensitive to severe heat stress than the wild type after long but not short recovery periods, and this could be complemented by the introduction of a wild-type copy of the HsfA2 gene. Quantitative hypocotyl elongation assay also revealed that AT decayed faster in the absence of HsfA2. Significant reduction in the transcript levels of several highly heat-inducible genes was observed in HsfA2 knockout plants after 4 h recovery or 2 h prolonged heat stress. Immunoblot analysis showed that Hsa32 and class I small Hsp were less abundant in the mutant than in the wild type after long recovery. Our results suggest that HsfA2 as a heat-inducible transactivator sustains the expression of Hsp genes and extends the duration of AT in Arabidopsis.
Heat-shock (HS) response is universal and many HS protein (Hsp) genes are highly conserved in all organisms. Plants, being sessile, may require unique genes to tolerate frequent temperature fluctuation in nature environment. However, this aspect has not been well explored. Here, we report the study on a novel Hsp gene, Hsa32, which encodes a HS-associated 32kDa protein. Hsa32 cDNA was isolated from a subtractive library prepared from tomato HS-induced versus control mRNA. Unlike the multigene families of many well-characterized Hsps, only one copy of Hsa32 exists in the tomato genome as shown by Southern blot. In addition to HS, the gene was also induced by salt, osmotic and oxidative stresses but to a much lower extent than by heat. Under non-HS conditions, LeHsa32 transcripts were more abundant in fruits, flowers and cultured cells. Multiple alternatively spliced forms of Hsa32 transcripts were observed in the HS-treated tomato flower but not in the leaf. Heterologous expression of a fusion protein of Arabidopsis HsfA1b and GUS in tomato results in the up-regulation of Hsa32 without heat treatment. So far, homologs of tomato Hsa32 could be found mainly in land plants and some microbes. Phylogenic analysis suggests that Hsa32 shares a common ancestor with bacterial phosphosulfolactate synthase. Identification of Hsa32 supports the idea that plants possess special features in HS response.
Plants and animals share similar mechanisms in the heat shock (HS) response, such as synthesis of the conserved HS proteins (Hsps). However, because plants are confined to a growing environment, in general they require unique features to cope with heat stress. Here, we report on the analysis of the function of a novel Hsp, heat-stress-associated 32-kD protein (Hsa32), which is highly conserved in land plants but absent in most other organisms. The gene responds to HS at the transcriptional level in moss (Physcomitrella patens), Arabidopsis (Arabidopsis thaliana), and rice (Oryza sativa). Like other Hsps, Hsa32 protein accumulates greatly in Arabidopsis seedlings after HS treatment. Disruption of Hsa32 by T-DNA insertion does not affect growth and development under normal conditions. However, the acquired thermotolerance in the knockout line was compromised following a long recovery period (>24 h) after acclimation HS treatment, when a severe HS challenge killed the mutant but not the wild-type plants, but no significant difference was observed if they were challenged within a short recovery period. Quantitative hypocotyl elongation assay also revealed that thermotolerance decayed faster in the absence of Hsa32 after a long recovery. Similar results were obtained in Arabidopsis transgenic plants with Hsa32 expression suppressed by RNA interference. Microarray analysis of the knockout mutant indicates that only the expression of Hsa32 was significantly altered in HS response. Taken together, our results suggest that Hsa32 is required not for induction but rather maintenance of acquired thermotolerance, a feature that could be important to plants.
The expression of heat shock proteins (Hsps) induced by nonlethal heat treatment confers acquired thermotolerance (AT) to organisms against subsequent challenges of otherwise lethal temperature. After the stress signal is removed, AT gradually decays, with decreased Hsps during recovery. AT of sufficient duration is critical for sessile organisms such as plants to survive repeated heat stress in their environment, but little is known regarding its regulation. To identify potential regulatory components, we took a reverse genetics approach by screening for Arabidopsis (Arabidopsis thaliana) T-DNA insertion mutants that show decreased thermotolerance after a long recovery (2 d) under nonstress conditions following an acclimation heat treatment. Among the tested mutants corresponding to 48 heat-induced genes, only the heat shock transcription factor HsfA2 knockout mutant showed an obvious phenotype. Following pretreatment at 37°C, the mutant line was more sensitive to severe heat stress than the wild type after long but not short recovery periods, and this could be complemented by the introduction of a wild-type copy of the HsfA2 gene. Quantitative hypocotyl elongation assay also revealed that AT decayed faster in the absence of HsfA2. Significant reduction in the transcript levels of several highly heat-inducible genes was observed in HsfA2 knockout plants after 4 h recovery or 2 h prolonged heat stress. Immunoblot analysis showed that Hsa32 and class I small Hsp were less abundant in the mutant than in the wild type after long recovery. Our results suggest that HsfA2 as a heat-inducible transactivator sustains the expression of Hsp genes and extends the duration of AT in Arabidopsis.
Hsa32 is a novel heat-shock protein (Hsp) mainly found in land plants. Recently, it was shown to be essential for acquired thermotolerance following a long recovery after acclimation heat-shock (HS) treatment. Without Hsa32, Arabidopsis mutant plants become more sensitive to severe HS than wildtype plants due to faster decay of a previously acquired protection. Sequence homology showed Hsa32 to be a phosphosulfolactate synthase-related protein, and it was proposed to be involved in the biosynthesis of sulfoquinovosyl diacylglycerol (SQDG), one of the major sulfur-containing glycolipids in the chloroplast thylakoid membrane. Currently, Sqd1 and Sqd2 are known to catalyze the consecutive reactions in the biosynthetic pathway of the sulfolipid. In this study, we examine Hsa32's possible involvement in an alternative pathway that bypasses Sqd1. Our analysis of the wild type and Hsa32 T-DNA knockout mutant plants revealed no significant differences in SQDG accumulation. In addition, the Arabidopsis mutant with a disrupted Sqd1 gene did not synthesize SQDG, which discounts the existence of an alternative pathway. The Sqd1 and Sqd2 knockout mutants, both lacking SQDG, did not show the same defect in acquired thermotolerance as did the Hsa32 null mutant, which suggests that the sulfolipid level is not related to the HS-sensitive phenotype. Our data suggest that Hsa32 is not involved in SQDG biosynthesis.
Plants and animals share similar mechanisms in the heat shock (HS) response, such as synthesis of the conserved HS proteins (Hsps). However, because plants are confined to a growing environment, in general they require unique features to cope with heat stress. Here, we report on the analysis of the function of a novel Hsp, heat-stress-associated 32-kD protein (Hsa32), which is highly conserved in land plants but absent in most other organisms. The gene responds to HS at the transcriptional level in moss (Physcomitrella patens), Arabidopsis (Arabidopsis thaliana), and rice (Oryza sativa). Like other Hsps, Hsa32 protein accumulates greatly in Arabidopsis seedlings after HS treatment. Disruption of Hsa32 by T-DNA insertion does not affect growth and development under normal conditions. However, the acquired thermotolerance in the knockout line was compromised following a long recovery period (.24 h) after acclimation HS treatment, when a severe HS challenge killed the mutant but not the wild-type plants, but no significant difference was observed if they were challenged within a short recovery period. Quantitative hypocotyl elongation assay also revealed that thermotolerance decayed faster in the absence of Hsa32 after a long recovery. Similar results were obtained in Arabidopsis transgenic plants with Hsa32 expression suppressed by RNA interference. Microarray analysis of the knockout mutant indicates that only the expression of Hsa32 was significantly altered in HS response. Taken together, our results suggest that Hsa32 is required not for induction but rather maintenance of acquired thermotolerance, a feature that could be important to plants.