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Keywords = terminal heat stress

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15 pages, 1637 KB  
Article
Molecular Dissection of the SlBAG9 Promoter from Tomato and Its Thermo-Regulatory Activity
by Fan Fei, Fan Yang, Yucheng Peng, Menghan Zhu, Sihan Li, Hailong Jiang and Haidong Ding
Int. J. Mol. Sci. 2026, 27(16), 7496; https://doi.org/10.3390/ijms27167496 - 21 Aug 2026
Viewed by 83
Abstract
The Bcl-2-associated athanogene (BAG) gene family plays vital roles in plant growth, development, and biotic and abiotic stress responses. Previous work has demonstrated that tomato SlBAG9, a group II BAG member, negatively regulates plant thermotolerance. However, the regulatory mechanisms governing SlBAG9 expression [...] Read more.
The Bcl-2-associated athanogene (BAG) gene family plays vital roles in plant growth, development, and biotic and abiotic stress responses. Previous work has demonstrated that tomato SlBAG9, a group II BAG member, negatively regulates plant thermotolerance. However, the regulatory mechanisms governing SlBAG9 expression remain poorly understood. In this study, we isolated and characterized the authentic 1486 bp full-length promoter (P1) of SlBAG9 from the tomato genome. Building upon our previous transcript-level observations, we provide here a detailed functional characterization of this promoter at the cellular and tissue level. In silico analysis identified several key cis-acting regulatory elements, including abscisic acid-responsive elements (ABRE), anaerobic response elements (ARE), and a heat shock element (HSE1). We used stable transgenic tomato plants carrying SlBAG9pro::GUS to verify that the full-length promoter was capable of driving the expression of β-glucuronidase reporter gene (GUS) in transgenic tomato plants, showing GUS staining was detectable in the roots, stems, leaves, flowers, fruits, and seeds, with the highest activity in red-ripe fruits. Notably, GUS activity was significantly upregulated by high temperature (HT) but not by PEG, NaCl, ABA, or cold treatments. To further dissect the HT-responsive regulatory module, we generated three 5′-terminal deletion fragments (−386 bp, P2; −239 bp, P3; and −113 bp, P4) and fused them to GUS. Under HT stress, the smallest deletion P4 showed negligible GUS activity, whereas P1, P2, and P3 retained significant activity. Furthermore, site-directed deletion of the HSE1 element in the full-length context (MU-P1) abolished HT inducibility, confirming that HSE1 serves as a critical positive HT-responsive element. Collectively, these findings confirm and extend our observations that SlBAG9 is a stress-responsive gene, and the characterized HSE1-dependent promoter module represents a promising candidate for genetic engineering aimed at enhancing thermotolerance in crops. Full article
(This article belongs to the Special Issue Advances in Plant Breeding and Biotechnology: From Lab to Field)
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10 pages, 6247 KB  
Article
Optimization of High-Volume PCB Assembly: A Lean Six Sigma Approach Through Pin-in-Paste Technology Integration
by Cosme Juan-Velázquez, Alfredo Villanueva-Montellano, José Omar Dávalos-Ramírez, Betania Sánchez-Santamaria, Manuel Alejandro Lira-Martínez, Guillermo Mejía-Cisneros and Delfino Cornejo-Monroy
J. Manuf. Mater. Process. 2026, 10(8), 276; https://doi.org/10.3390/jmmp10080276 - 2 Aug 2026
Viewed by 339
Abstract
The dual reliance on surface-mount technology (SMT) and pin-through-hole (PTH) assembly lines in high-volume printed circuit board (PCB) manufacturing induces logistical bottlenecks, excessive operational costs, and elevated thermal stress on components. This study presents the optimization of a wireless detector terminal production line [...] Read more.
The dual reliance on surface-mount technology (SMT) and pin-through-hole (PTH) assembly lines in high-volume printed circuit board (PCB) manufacturing induces logistical bottlenecks, excessive operational costs, and elevated thermal stress on components. This study presents the optimization of a wireless detector terminal production line by integrating Pin-in-Paste (PiP) technology within a Six Sigma DMAIC (Define, Measure, Analyze, Improve, Control) framework. By accurately calculating the required solder volume (Vreq) and stencil aperture dimensions based on pin and pad geometries, the wave soldering process was eliminated without altering existing thermal profiles. The integration consolidated the assembly into a single heat cycle, ensuring IPC-A-610 Class 2 compliance for barrel fill ratios. The results demonstrate a 97% reduction in average assembly costs, yielding annual savings of USD 92,513 while eliminating USD 44,025 in work-in-progress (WIP) inventory. Furthermore, the single-reflow approach mitigated component thermal degradation and reduced the facility’s carbon footprint by an estimated 13.32–17.76 metric tons of CO2 equivalent annually. This research validates a comprehensive methodology for transitioning to PiP technology, offering a sustainable, cost-effective framework for operational excellence in the electronics’ manufacturing industry. Full article
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26 pages, 5565 KB  
Article
Poecilobdella manillensis Bioactive Peptides Reduce Oxidative Stress and Regulate Metabolic Reprogramming via the IIS/FOXO Pathway to Improve Hypoxic Injury
by Jiahui Wang, Jieshu Li, Shuqi Li, Jinze Li, Zichen Lei, Jinchai Qi, Gengyang Liu, Zekun Yu, Yueying Yuan, Jing Han, Tao Ma and Yonggang Liu
Antioxidants 2026, 15(8), 936; https://doi.org/10.3390/antiox15080936 - 28 Jul 2026
Viewed by 283
Abstract
FOXO/DAF-16 is involved in stress resistance and metabolic regulation, but the molecular mechanisms of its interaction with hypoxia remain unclear. This study aimed to evaluate the anti-hypoxic effects of Poecilobdella manillensis bioactive peptide (PMP) and to investigate whether IIS/FOXO acts as a key [...] Read more.
FOXO/DAF-16 is involved in stress resistance and metabolic regulation, but the molecular mechanisms of its interaction with hypoxia remain unclear. This study aimed to evaluate the anti-hypoxic effects of Poecilobdella manillensis bioactive peptide (PMP) and to investigate whether IIS/FOXO acts as a key node in mediating the regulation of oxidative stress and metabolic reprogramming. In the chemical hypoxia model of Caenorhabditis elegans (C. elegans) induced by sodium sulfite, PMP treatment improved the survival status and movement, feeding, and reproductive ability of hypoxic C. elegans, and significantly increased their survival rate. It also reduced reactive oxygen species (ROS) and lipofuscin levels in C. elegans, enhancing their tolerance to oxidative and heat stress. In the terminal normobaric hypoxia mice model, PMP intervention prolonged the survival time of hypoxic mice, alleviated the damage of heart, lung, and brain tissues, and increased superoxide dismutase (SOD) activity and glutathione (GSH) levels, and decreased malondialdehyde (MDA) concentrations and lactate dehydrogenase (LDH) activity in serum and tissues of mice. 1H-NMR metabolomics analysis showed that PMP treatment reversed hypoxia-induced abnormalities in key metabolites such as glucose, lactic acid, glutamic acid, and taurine. Next, we utilized C. elegans mutants deficient in daf-2, age-1, akt-1, daf-16, and hsp-16.2, and further observed the nuclear translocation of DAF-16 in DAF-16::GFP C. elegans. The results showed PMP induced DAF-16 nuclear translocation and upregulated the expression of downstream SOD-3. Key metabolites representing antioxidant and energy metabolism were measured in the daf-16 mutant C. elegans. The results showed that PMP intervention failed to restore the levels of glucose, lactic acid, glutamic acid, and taurine in the mutant. Finally, 12 peptides containing antioxidant-related bioactive amino acid residues in PMP were screened by UPLC-Q-Exactive-MS and peptide biological activity prediction. Among them, molecular docking showed that KPPGP had a good binding with FOXO1. In conclusion, in C. elegans, PMP activated DAF-16/FOXO by inhibiting the Insulin/insulin-like growth factor-1 signaling (IIS) pathway and regulated redox homeostasis and metabolic reprogramming to resist hypoxia injury, and this protective effect was also observed in mouse models. IIS/FOXO can be used as a key node to regulate oxidative stress and energy metabolism under hypoxic conditions, and the identification of KPPGP provides insights into the screening and study of bioactive peptides in natural products. Full article
(This article belongs to the Special Issue Bioactivity Mechanisms of Antioxidant Compounds from Natural Products)
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25 pages, 7059 KB  
Article
Genome-Wide Identification of the P-Type Ca2+-ATPase Gene Family in Maize and Its Expression Dynamics Under Abiotic and Biotic Stress Conditions
by Mohsin Niaz, Guoliang Ma, Naqeeb Ullah Khan, Wencai Yang, Manlin Zhang, Changlei Yue and Guan-Feng Wang
Int. J. Mol. Sci. 2026, 27(13), 5987; https://doi.org/10.3390/ijms27135987 - 3 Jul 2026
Viewed by 451
Abstract
Calcium (Ca2+) functions as a second messenger in plants, coordinating development and stress responses through cytosolic Ca2+ dynamics. The P-type Ca2+-ATPases of the ECA (P-IIA) and ACA (P-IIB) subfamilies are central to Ca2+ homeostasis and signal termination [...] Read more.
Calcium (Ca2+) functions as a second messenger in plants, coordinating development and stress responses through cytosolic Ca2+ dynamics. The P-type Ca2+-ATPases of the ECA (P-IIA) and ACA (P-IIB) subfamilies are central to Ca2+ homeostasis and signal termination by extruding Ca2+ from the cytosol. In this study, genome-wide identification was performed to identify the P-type Ca2+-ATPases according to the maize B73 v5 reference genome, followed by phylogenetic, structural, chromosomal, syntenic, network, and expression analyses. Nineteen genes were identified, comprising 4 ECAs and 15 ACAs. All 19 members retained the DKTGT phosphorylation site, while the CaATP_NAI (N- terminal autoinhibitory) extension distinguished all 15 ACAs from the 4 ECAs. Collinearity analysis revealed 11 maize–rice syntenic pairs, implicating segmental duplication. ECAs were preferentially expressed in reproductive tissues, whereas ACAs were broadly expressed across vegetative organs. RNA-seq-based profiling detected distinct stress-responsive expression patterns of Ca2+-ATPase genes. Under abiotic stress, ZmACA12-1 was consistently upregulated under drought, ZmACA6-2 dominated the heat response, and ZmACA4-2 showed the broadest cross-stress repression. Under biotic stress, ACA members again dominated, with ZmACA1-1 being the most broadly pathogen-responsive member, ZmECA1-3 the principal ECA-class responder, and ZmACA9 exhibiting consistent pathogen-associated repression. Additionally, ZmACA12-1 and ZmACA4-4 showed genotype-dependent regulation between resistant and susceptible lines. Collectively, these candidates represent priority targets for functional validation of the calcium efflux mechanisms that underlie maize adaptation to both abiotic and biotic stresses. Full article
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1 pages, 129 KB  
Correction
Correction: Sharma et al. Morpho-Physiological and Biochemical Responses of Field Pea Genotypes under Terminal Heat Stress. Plants 2023, 12, 256
by Vijay Sharma, Chandra Mohan Singh, Vishal Chugh, Kamaluddin, Pawan Kumar Prajapati, Anuj Mishra, Prashant Kaushik, Parmdeep Singh Dhanda, Alpa Yadav and Satyendra
Plants 2026, 15(13), 2060; https://doi.org/10.3390/plants15132060 - 2 Jul 2026
Viewed by 195
Abstract
In the publication [...] Full article
19 pages, 4263 KB  
Article
Optimized Polyurethane/CNTs Composite for Stress-Free Two-Way Shape Memory via Training Enhancement
by Yutong Guo, Kangkang Shi, Yujie Chen, Qunfu Fan, Dongsheng Li and Hezhou Liu
Polymers 2026, 18(13), 1582; https://doi.org/10.3390/polym18131582 - 25 Jun 2026
Viewed by 355
Abstract
Thermally responsive shape memory polymer materials are the most widely used type of intelligent materials and have found applications in numerous fields. However, their practical utility is often limited by poor heat conduction. Carbon nanotubes (CNTs), renowned for their exceptional thermo-conductive and photothermal [...] Read more.
Thermally responsive shape memory polymer materials are the most widely used type of intelligent materials and have found applications in numerous fields. However, their practical utility is often limited by poor heat conduction. Carbon nanotubes (CNTs), renowned for their exceptional thermo-conductive and photothermal properties, provide a promising solution. In this study, CNTs were integrated into polyurethane prepared by stepwise polymerization method, using hydroxyl terminated polycaprolactone (PCL-diOH), poly(ethylene glycol) (PEG) and hexamethylene diisocyanate (HDI). The resulting polyurethane composite material exhibits remarkable mechanical strength, enhanced thermal conductivity, and superior shape memory performance. Notably, it demonstrates a form of training enhancement phenomenon, which shows higher mechanical properties. And the composite could achieve stress-free two-way shape memory behavior after cyclic stretching process. Additionally, this composite material can exhibit “vitrimer” material properties at higher temperatures (110 °C), allowing for shape reprogramming. The carbon nanotube-reinforced composite material can achieve remote and precise manipulation under light stimulation. By combining the composite material with a metal thermally conductive layer, a multi-layer structure with shape memory properties can be prepared, which can achieve two-way shape memory behavior under electrical and light stimulation, further expanding the application potential of the composite material in the real world. Full article
(This article belongs to the Section Polymer Composites and Nanocomposites)
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11 pages, 454 KB  
Article
The Effect of Night-Time Feeding on Steer Performance After Terminal Sort
by Madeline R. Mancke, Brad J. White, Eduarda M. Bortoluzzi and Robert L. Larson
Animals 2026, 16(12), 1912; https://doi.org/10.3390/ani16121912 - 20 Jun 2026
Viewed by 348
Abstract
Heat stress occurs when total environmental and metabolic heat production is greater than an animal’s ability to dissipate that heat. Heat stress negatively impacts feeder cattle performance and welfare. Limited research has been conducted to determine if feeding cattle in the evening, thereby [...] Read more.
Heat stress occurs when total environmental and metabolic heat production is greater than an animal’s ability to dissipate that heat. Heat stress negatively impacts feeder cattle performance and welfare. Limited research has been conducted to determine if feeding cattle in the evening, thereby shifting their metabolic heat production to a cooler period of the day, can help mitigate heat stress. This pen-level randomized controlled trial evaluated the effects of evening feeding (PM; feedings at 2000, 2300, and 0200 h; n = 24 pens) versus morning feeding (AM; feedings at 0500, 0800, and 1200 h; n = 24 pens) on terminally sorted steer performance in a commercial feedyard in the Pacific Northwest. Data collection included feed delivery, water consumption, health events, open mouth breathing prevalence, and carcass traits. Linear and generalized linear mixed-effects models were used to determine potential differences between treatment group and temperature-humidity index (THI; <80 versus ≥80). Only 14% of the total study days had a THI ≥ 80, indicating little to no heat stress impacts. There were no differences found between PM and AM for any outcome (p < 0.05). Regardless of treatment group, water consumption tended (p = 0.07) to increase, and open mouth breathing significantly (p < 0.05) increased on days with THI ≥ 80. Further research is warranted to assess evening feeding as a heat stress mitigation strategy in a feedyard setting. Full article
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22 pages, 22817 KB  
Article
Genome-Wide Identification of BSK Gene Family and Their Heat Stress Responses in Non-Heading Chinese Cabbage
by Lijuan Yang, Jiahui Wang, Pan Yuan, Xiang Li, Xiaofeng Li and Bo Zhu
Horticulturae 2026, 12(6), 686; https://doi.org/10.3390/horticulturae12060686 - 1 Jun 2026
Viewed by 1077
Abstract
Although brassinosteroids (BRs) are widely recognized as important regulators of plant growth and environmental adaptation, the biological roles of BR-signaling kinases (BSKs) in horticultural crops remain largely unclear. To investigate their potential involvement in thermotolerance, BSK-related genes in Brassica rapa subsp. chinensis were [...] Read more.
Although brassinosteroids (BRs) are widely recognized as important regulators of plant growth and environmental adaptation, the biological roles of BR-signaling kinases (BSKs) in horticultural crops remain largely unclear. To investigate their potential involvement in thermotolerance, BSK-related genes in Brassica rapa subsp. chinensis were systematically identified and characterized. Twenty BcBSK members were obtained, all harboring a conserved N-terminal serine/threonine kinase domain together with C-terminal tetratricopeptide repeat (TPR) motifs. Evolutionary and syntenic analyses separated these genes into several clades and further identified 16 duplicated gene pairs predominantly subjected to purifying selection. Promoter analysis revealed abundant cis-acting elements associated with hormone signaling and stress responsiveness. In addition, protein interaction prediction suggested that BcBSK2, BcBSK5, BcBSK14, and BcBSK18 may function as central components within the BSK-mediated regulatory network. Interaction network analysis highlighted BcBSK2, BcBSK5, BcBSK14, and BcBSK18 as potential hub genes. Under heat treatment (38 °C), RNA-seq analysis revealed cultivar-specific expression patterns: BcBSK1 and BcBSK2 were strongly induced in the heat-sensitive cultivar “Aijiaohuang”, whereas only minor changes were detected in the heat-tolerant cultivar “SHI”. qRT-PCR analysis further confirmed these transcriptional patterns. Exogenous 0.5 mg·L−1 24-epibrassinolide (EBR) alleviated heat-induced damage in both NHCC cultivars by reducing MDA content and increasing proline levels, while antioxidant enzyme responses showed genotype-dependent patterns. In the heat-sensitive cultivar, EBR significantly increased SOD, POD, and CAT activities, whereas the heat-tolerant cultivar maintained relatively high SOD activity, accompanied by comparatively lower POD and CAT activities. Several BcBSK genes, particularly BcBSK2, BcBSK5, BcBSK14, and BcBSK18, showed pronounced expression responses under heat stress and may be associated with BR-mediated thermotolerance. Overall, these findings suggest that BcBSK family members are associated with BR-regulated thermotolerance and correlated with genotype-dependent differences in ROS regulatory strategies, providing a basis for further studies on heat tolerance improvement in NHCC. Full article
(This article belongs to the Section Biotic and Abiotic Stress)
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17 pages, 373 KB  
Review
Heat Shock Proteins as Targets for Cancer Therapeutics
by Aryaman Trikala, Binghui Shen and Sharonlin Bhardwaj
J. Clin. Med. 2026, 15(10), 3605; https://doi.org/10.3390/jcm15103605 - 8 May 2026
Viewed by 1005
Abstract
Introduction: Heat shock proteins (HSPs) are stress-responsive molecular chaperones that are frequently dysregulated in cancer and contribute to tumorigenesis, invasion, metastasis, immune interactions, and resistance to therapy. Distinct HSP families, including HSP27, HSP60, HSP70, HSP90, and HSP110, promote malignant progression through complementary [...] Read more.
Introduction: Heat shock proteins (HSPs) are stress-responsive molecular chaperones that are frequently dysregulated in cancer and contribute to tumorigenesis, invasion, metastasis, immune interactions, and resistance to therapy. Distinct HSP families, including HSP27, HSP60, HSP70, HSP90, and HSP110, promote malignant progression through complementary effects on apoptosis regulation, mitochondrial function, proteostasis, and stabilization of oncogenic signaling pathways. This makes HSPs attractive therapeutic targets. Their coordinated roles within stress-adaptive chaperone networks further garner interest in targeting multiple HSP families in cancer therapy. Discussion: Preclinical and clinical studies have established multiple HSP families as promising anticancer targets; however, clinical translation of HSP-directed therapies has been challenged by toxicity, compensatory heat shock responses, and resistance mechanisms. Many N-terminal HSP90 inhibitors have shown clinical utility but have also highlighted the need for alternative approaches, including C-terminal inhibition, HSP70-directed therapies, and rational combination strategies targeting compensatory survival pathways. Emerging inhibitors targeting HSP27, HSP60, and HSP110, as well as HSP-based vaccines, further expand therapeutic opportunities across cancer subtypes. Collectively, these approaches highlight the growing therapeutic relevance of disrupting interconnected HSP networks rather than targeting individual chaperones in isolation. Conclusions: Future development of heat shock protein-targeted therapies will require a deeper understanding of HSP-mediated chemoresistance. Clinical trial and drug development approaches may benefit from combination or multi-targeted strategies that simultaneously disrupt multiple components of the heat shock protein network to achieve more durable anticancer responses. Full article
(This article belongs to the Section Oncology)
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16 pages, 13195 KB  
Article
Effect of Pine Wood Flour Grafted with Poly(propylene glycol) Toluene 2,4-Diisocyanate Terminated on the Properties of Polylactic Acid Composites
by Itzel F. Franco Jacobo, Ruben González Nuñez, Abraham G. Alvarado Mendoza, Gonzalo Canche Escamilla, Eulogio Orozco Guareño and Francisco J. Moscoso Sánchez
Macromol 2026, 6(2), 25; https://doi.org/10.3390/macromol6020025 - 14 Apr 2026
Viewed by 989
Abstract
This study developed poly(lactic acid) (PLA) biocomposites reinforced with pine wood flour (10, 20, and 30 wt%) to achieve the interphase through chemical modification. Specifically, the wood flour was treated with poly(propylene glycol) toluene 2,4-diisocyanate terminated (PEGTDI), while 1 wt% poly(lactic acid)-g-maleic anhydride [...] Read more.
This study developed poly(lactic acid) (PLA) biocomposites reinforced with pine wood flour (10, 20, and 30 wt%) to achieve the interphase through chemical modification. Specifically, the wood flour was treated with poly(propylene glycol) toluene 2,4-diisocyanate terminated (PEGTDI), while 1 wt% poly(lactic acid)-g-maleic anhydride (PLA-g-MA) was integrated as a reactive compatibilizer during extrusion and thermocompression. Fourier-transform infrared spectroscopy (FTIR) analysis corroborated the occurrence of urethane formation and ester/anhydride linkages, as substantiated by the presence of characteristic bands indicative of surface carbamation at 1645 and 1726 cm−1. Thermal analysis revealed that both the pine wood flour and coupling agents promoted PLA crystallization; however, thermogravimetric analysis (TGA) indicated a decrease in thermal stability for functionalized composites, suggesting a trade-off between enhanced interfacial interaction and heat resistance. Mechanical testing demonstrated a significant reinforcement effect, with the Young’s modulus increasing by up to 22% in untreated composites. The coupling agents effectively optimized stress transfer at low fiber loadings (10 wt%), while flexural modulus improvements were predominant at higher loadings (20–30 wt%) regardless of treatment. These findings underscore the criticality of surface modification and compatibilizer selection for tailoring the structural and thermo-mechanical properties of PLA-based biocomposites, thereby providing a pathway for optimized performance in structural applications. Full article
(This article belongs to the Topic Recent Advances in Composite Biomaterials)
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13 pages, 1541 KB  
Article
Integrated Phylogenomics and Expression Profiling of the Peptide Deformylase Gene Family in Oryza sativa Reveals Their Role in Development and Stress Tolerance
by Chen Yuan, Yanli Zhang, Minghui Zhao and Dianrong Ma
Curr. Issues Mol. Biol. 2026, 48(4), 396; https://doi.org/10.3390/cimb48040396 - 13 Apr 2026
Viewed by 527
Abstract
Peptide deformylase (PDF) belongs to a conserved enzyme family critical for N-terminal methionine excision (NME), an essential protein maturation process in prokaryotes and eukaryotic organelles (chloroplasts, mitochondria). To explore the potential functions of OsPDFs in Oryza sativa, this study employed bioinformatics approaches [...] Read more.
Peptide deformylase (PDF) belongs to a conserved enzyme family critical for N-terminal methionine excision (NME), an essential protein maturation process in prokaryotes and eukaryotic organelles (chloroplasts, mitochondria). To explore the potential functions of OsPDFs in Oryza sativa, this study employed bioinformatics approaches and experimental validation to systematically identify and analyze the OsPDF gene family. Three OsPDF genes (OsPDF1A, OsPDF1B, OsPDF1B2) were identified in rice. These genes are exclusively distributed on chromosome 1. The biophysical properties of these proteins showed that OsPDF1A and OsPDF1B are alkaline proteins, while OsPDF1B2 is acidic, and all are hydrophilic with moderate thermostability potential. Synteny analysis revealed closer evolutionary relationships between Oryza sativa and the monocot Triticum aestivum than with dicots, reflecting conserved PDF function in gramineous plants. Analysis of cis-acting elements in the 2000 bp upstream region of OsPDF gene promoters revealed numerous elements associated with abiotic stress response and hormone regulation. Furthermore, quantitative real-time PCR (qRT-PCR) data supported these findings, indicating that OsPDF1A and OsPDF1B were upregulated under low-temperature stress, and all three OsPDF genes were transcriptionally activated by heat, salt and UV-B stresses, indicating their active involvement in rice growth, development, and abiotic stress tolerance. In summary, OsPDFs exhibit significant functions in rice’s stress adaptation, growth, and development. This study not only enhances our understanding of the OsPDF gene family’s genomic, evolutionary, and functional characteristics, but also provides new perspectives and foundational data for further exploring their regulatory mechanisms in protein maturation and abiotic stress responses, as well as their potential applications in rice stress tolerance breeding. Full article
(This article belongs to the Special Issue New Advances in Plant Responses to Environmental Stresses)
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22 pages, 4118 KB  
Article
Poly(L-Tyrosine)-Containing Dehydropeptides: Hydrogels vs. Bioadhesives
by Raquel Pereira, Loic Hilliou, Braian E. B. Uribe, José A. Martins and Paula M. T. Ferreira
Gels 2026, 12(4), 305; https://doi.org/10.3390/gels12040305 - 2 Apr 2026
Viewed by 1402
Abstract
Bioadhesive materials capable of operating under aqueous conditions are of considerable interest for biomedical and materials science applications. Peptide-based systems represent an attractive platform for such materials due to their structural tunability, inherent biocompatibility, and ability to form supramolecular networks through noncovalent interactions. [...] Read more.
Bioadhesive materials capable of operating under aqueous conditions are of considerable interest for biomedical and materials science applications. Peptide-based systems represent an attractive platform for such materials due to their structural tunability, inherent biocompatibility, and ability to form supramolecular networks through noncovalent interactions. In this work, a focused library of tyrosine-containing dehydropeptides was designed and synthesized to investigate how molecular architectures influence self-assembly, hydrogel formation and adhesive properties. The peptides were synthesized using a solution-phase Boc strategy and systematically varied with respect to N-terminal protection and C-terminal functionality. The N-protected dehydropeptides formed supramolecular hydrogels through multiple gelation triggers, including pH reduction and heating–cooling cycles. Rheological characterization confirmed the formation of viscoelastic networks with tunable mechanical properties, with storage moduli reaching tens of kilopascals depending on peptide structure. Scanning electron microscopy revealed dense fibrous nanostructures consistent with supramolecular hydrogel formation. The N,C-deprotected dehydropeptides displayed reduced gelation propensity but formed cohesive films with measurable adhesive performance toward hydrophilic substrates. Lap-shear tests demonstrated high shear strengths for the hydrophilic films, highlighting their structural robustness under stress. Overall, this study provides insights into the structure–property relationships governing tyrosine-containing dehydropeptide assemblies and demonstrates their potential as minimalistic building blocks for supramolecular adhesive materials. Full article
(This article belongs to the Section Gel Applications)
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12 pages, 1707 KB  
Article
OsOFP3 Negatively Regulates Heat Stress Tolerance by Modulating H2O2 Homeostasis and Stomatal Aperture in Rice
by Guiyuan Yu, Yingfeng Wang, Guilian Zhang, Huabing Deng, Wenbang Tang, Lifeng Wang and Yunhua Xiao
Antioxidants 2026, 15(3), 314; https://doi.org/10.3390/antiox15030314 - 2 Mar 2026
Viewed by 849
Abstract
Rice (Oryza sativa) is a staple crop that is highly susceptible to heat stress (HS), which severely impairs growth and yield. In this study, we identified the rice Ovate Family Protein OsOFP3 as a novel negative regulator in response to heat. [...] Read more.
Rice (Oryza sativa) is a staple crop that is highly susceptible to heat stress (HS), which severely impairs growth and yield. In this study, we identified the rice Ovate Family Protein OsOFP3 as a novel negative regulator in response to heat. Our results demonstrate that the expression of OsOFP3 is suppressed at both the transcriptional and protein levels under HS. Overexpression of OsOFP3 significantly reduces the survival rate of rice seedlings under HS and exacerbates chlorophyll degradation, membrane damage, and the accumulation of reactive oxygen species (H2O2 and O2). In contrast, OsOFP3 mutants exhibit enhanced heat tolerance. Moreover, OsOFP3-overexpressing plants display increased stomatal opening and decreased stomatal closure under HS. Molecular interaction analysis further reveals that OsOFP3 interacts with the C-terminal domain of OsHTAS, a known positive regulator of heat tolerance encoding an E3 ubiquitin ligase, and this interaction depends on the RING domain of OsHTAS. Taken together, our findings indicate that OsOFP3 negatively regulates rice heat tolerance by disrupting ROS homeostasis, inhibiting stomatal closure, and potentially antagonizing the OsHTAS-mediated signaling pathway. This research provides new insights into the molecular mechanisms underlying HS tolerance in rice. Full article
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26 pages, 6045 KB  
Article
Screening of Heat-Resistant Morchella Strains and Elucidation of Their Heat-Tolerance Mechanisms
by Qilong Wu, Xiaoxuan You, Lihong Zheng, Zhen Li, Dingbang Da, Hongyu Chen, Yicheng Cao, Yuping Fan, Minglei Li and Wenqiang Li
Biology 2026, 15(5), 386; https://doi.org/10.3390/biology15050386 - 27 Feb 2026
Viewed by 921
Abstract
Morchella is a nutritious and artificially cultivable rare ascomycete, and its growth and development regulation mechanisms are a current research hotspot. High-temperature stress severely limits the annual yield of Morchella, and this challenge is intensifying with global warming. However, previous studies have [...] Read more.
Morchella is a nutritious and artificially cultivable rare ascomycete, and its growth and development regulation mechanisms are a current research hotspot. High-temperature stress severely limits the annual yield of Morchella, and this challenge is intensifying with global warming. However, previous studies have lacked systematic screening for heat-tolerant Morchella strains, and their molecular response mechanisms to heat stress remain unclear. In this study, we conducted a comprehensive analysis of phenotypic characteristics, physiological metabolism, and transcriptomics on 19 Morchella strains under normal (25 °C) and high-temperature (30 °C) conditions. The heat-tolerant strain HLM exhibited superior performance in mycelial growth, morphology, and field cultivation. It maintained cell homeostasis under heat stress through mild osmotic regulation (elevated levels of proline, soluble sugars, and proteins), a robust antioxidant system (increased activities of CAT, POD, and SOD), and reduced malondialdehyde accumulation. Transcriptomic analysis identified a novel regulatory model of “stress perception—metabolic preparation—terminal detoxification” in the heat-tolerant strain HLM under heat stress. The rapid upregulation of the SMPD1 gene may mediate ceramide signal generation, promoting G6PDH expression to drive carbon flow into the pentose phosphate pathway, thereby increasing NADPH output. As the detoxification terminal, AKR4C uses this reducing power to eliminate toxic carbonyl end products like malondialdehyde, completing the defense loop. These findings offer new insights into the heat-tolerance mechanisms of large ascomycetes, provide a theoretical foundation for stress-resistant Morchella breeding and cultivation in high-temperature areas, and serve as valuable resources for exploring heat-tolerance mechanisms and molecular breeding in other edible fungi. Full article
(This article belongs to the Special Issue Exploring the Biodiversity, Taxonomy, Ecology and Genomics of Fungi)
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33 pages, 2334 KB  
Review
Oxidative Stress, Sperm DNA Fragmentation, or Both? Optimizing Test Selection in Male Infertility Evaluation
by Aris Kaltsas, Stamatis Papaharitou, Pallav Sengupta, Ramadan Saleh and Ashok Agarwal
Antioxidants 2026, 15(3), 293; https://doi.org/10.3390/antiox15030293 - 26 Feb 2026
Cited by 7 | Viewed by 3955
Abstract
Oxidative stress (OS) and sperm DNA fragmentation (SDF) are complementary contributors to male infertility. OS characterizes a compromised seminal redox status, whereas SDF quantifies downstream genomic damage. Human sperm are highly susceptible to redox damage due to lipid-rich membranes and disrupted post-meiotic DNA-repair [...] Read more.
Oxidative stress (OS) and sperm DNA fragmentation (SDF) are complementary contributors to male infertility. OS characterizes a compromised seminal redox status, whereas SDF quantifies downstream genomic damage. Human sperm are highly susceptible to redox damage due to lipid-rich membranes and disrupted post-meiotic DNA-repair capacity. Excess reactive oxygen species (ROS) can cause lipid peroxidation, oxidative base lesions, and DNA strand breaks that impair fertilization, embryo development, and pregnancy outcomes. This review explains how OS promotes genomic instability and summarizes the main laboratory assays that assess redox status and SDF in semen. These include direct ROS chemiluminescence assay, oxidation–reduction potential, total antioxidant capacity/ferric reducing antioxidant power, and lipid peroxidation biomarkers, alongside SDF platforms (Sperm Chromatin Structure Assay, terminal deoxynucleotidyl transferase dUTP nick-end labeling, alkaline/neutral Comet, and sperm chromatin dispersion). Additionally, guideline-aligned indications are highlighted to clarify the conditions for testing OS and SDF. OS testing is most relevant in men with leukocytospermia or suspected genital tract infection or inflammation, including dysbiosis; in cases of major modifiable exposures such as smoking or heat; and for early monitoring after treatment. SDF testing is particularly informative in couples with recurrent pregnancy loss and in unexplained infertility with normal semen parameters. Combined OS and SDF testing is recommended in clinical varicocele, repeated in vitro fertilization (IVF) or intracytoplasmic sperm injection (ICSI) failure, poor embryo development, and follow-up after targeted therapy. Management centers on treating infection and inflammation, improving lifestyle and environmental factors, considering varicocelectomy when indicated, using targeted antioxidant therapy in men with documented OS, and selectively applying sperm selection technologies or testicular sperm for ICSI when SDF remains high. Priorities include assay standardization, etiologic attribution of DNA damage, and trials testing OS/SDF-guided pathways with live birth as the primary endpoint. When used selectively and in the appropriate context, OS and SDF testing can help refine diagnosis, improve counseling, and help personalize care of infertile couples. Full article
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