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MicroRNA160 Modulates Plant Development and Heat Shock Protein Gene Expression to Mediate Heat Tolerance in Arabidopsis

TLDR
Transgenic Arabidopsis plants overexpressing miR160 improved seed germination and seedling survival under heat stress and altered the expression of the heat shock proteins and plant development to allow plants to survive heat stress.
Abstract
Global warming is causing a negative impact on plant growth and adversely impacts on crop yield. MicroRNAs (miRNAs) are critical in regulating the expression of genes involved in plant development as well as defense responses. The effects of miRNAs on heat-stressed Arabidopsis warrants further investigation. Heat stress increased the expression of miR160 and its precursors but considerably reduced that of its targets, ARF10, ARF16, and ARF17. To study the roles of miR160 during heat stress, transgenic Arabidopsis plants overexpressing miR160 precursor a (160OE) and artificial miR160 (MIM160), which mimics an inhibitor of miR160, were created. T-DNA insertion mutants of miR160 targets were also used to examine their tolerances to heat stress. Results presented that overexpressing miR160 improved seed germination and seedling survival under heat stress. The lengths of hypocotyl elongation and rachis were also longer in 160OE than the wild-type (WT) plants under heat stress. Interestingly, MIM160 plants showed worse adaption to heat. In addition, arf10, arf16, and arf17 mutants presented similar phenotypes to 160OE under heat stress to advance abilities of thermotolerance. Moreover, transcriptome and qRT-PCR analyses revealed that HSP17.6A, HSP17.6II, HSP21, and HSP70B expression levels were regulated by heat in 160OE, MIM160, arf10, arf16, and arf17 plants. Hence, miR160 altered the expression of the heat shock proteins and plant development to allow plants to survive heat stress.

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Pectin Methylesterases: Cell Wall Remodeling Proteins Are Required for Plant Response to Heat Stress

TL;DR: How plant cell walls respond to certain environmental cues through cell wall-modifying proteins in connection with modifications in cell wall machinery is elucidated to provide targets and strategies to facilitate plant adaptation to heat stress.
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Root endophyte induced plant thermotolerance by constitutive chromatin modification at heat stress memory gene loci

TL;DR: In this paper, the root endophyte Enterobacter sp. SA187 induces thermotolerance in wheat in the laboratory as well as in open field agriculture, which is mediated by ethylene signaling via the transcription factor EIN3.
Journal ArticleDOI

Genome-Wide Transcript and Small RNA Profiling Reveals Transcriptomic Responses to Heat Stress

TL;DR: This comprehensive and integrated spatiotemporal expression profile of heat-responsive mRNAs and small RNAs reveals complex and dynamic transcriptomic responses to heat stress in maize, revealing several key regulators as potential targets for thermotolerance improvement in maize.
Journal ArticleDOI

Understanding plant stress memory response for abiotic stress resilience: Molecular insights and prospects.

TL;DR: In this paper , a review emphasizes the advancements in various epigenetic-related chromatin modifications, DNA methylation, histone modifications, chromatin remodeling, phytohormones, and microRNAs associated with abiotic stress memory.
Journal ArticleDOI

Heat Shock Signaling in Land Plants: From Plasma Membrane Sensing to the Transcription of Small Heat Shock Proteins.

TL;DR: In this paper, the authors highlight the pathway from heat perception by the plasma membrane through calcium channels, such as cyclic nucleotide-gated channels, to the activation of the heat-shock transcription factors (HSFs), which act as essential regulators.
References
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Journal ArticleDOI

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TL;DR: Although they escaped notice until relatively recently, miRNAs comprise one of the more abundant classes of gene regulatory molecules in multicellular organisms and likely influence the output of many protein-coding genes.
Journal ArticleDOI

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TL;DR: The modified method should facilitate high-throughput transformation of Arabidopsis for efforts such as T-DNA gene tagging, positional cloning, or attempts at targeted gene replacement.
Journal ArticleDOI

Differential gene and transcript expression analysis of RNA-seq experiments with TopHat and Cufflinks

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Journal ArticleDOI

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TL;DR: This review provides both an overview of the essential processes that are associated with germination and a description of the possible impediments thereto that may result in dormancy.
Journal ArticleDOI

Prediction of Plant MicroRNA Targets

TL;DR: This work predicts regulatory targets for 14 Arabidopsis microRNAs (miRNAs) by identifying mRNAs with near complementarity and identifies members of transcription factor gene families involved in developmental patterning or cell differentiation.
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