» Articles » PMID: 29146915

Transcriptional Profiling Provides New Insights into the Role of Nitric Oxide in Enhancing Ganoderma Oregonense Resistance to Heat Stress

Overview
Journal Sci Rep
Specialty Science
Date 2017 Nov 18
PMID 29146915
Citations 17
Authors
Affiliations
Soon will be listed here.
Abstract

Ganoderma is well known for its use in traditional Chinese medicine and is widely cultivated in China, Korea, and Japan. Increased temperatures associated with global warming are negatively influencing the growth and development of Ganoderma. Nitric oxide is reported to play an important role in alleviating fungal heat stress (HS). However, the transcriptional profiling of Ganoderma oregonense in response to HS, as well as the transcriptional response regulated by NO to cope with HS has not been reported. We used RNA-Seq technology to generate large-scale transcriptome data from G. oregonense mycelia subjected to HS (32 °C) and exposed to concentrations of exogenous NO. The results showed that heat shock proteins (HSPs), "probable stress-induced proteins", and unigenes involved in "D-amino-acid oxidase activity" and "oxidoreductase activity" were significantly up-regulated in G. oregonense subjected to HS (P < 0.05). The significantly up-regulated HSPs, "monooxygenases", "alcohol dehydrogenase", and "FAD/NAD(P)-binding domain-containing proteins" (P < 0.05) regulated by exogenous NO may play important roles in the enhanced HS tolerance of G. oregonense. These results provide insights into the transcriptional response of G. oregonense to HS and the mechanism by which NO enhances the HS tolerance of fungi at the gene expression level.

Citing Articles

Nitric Oxide in Fungi: Production and Function.

Yu N, Park G J Fungi (Basel). 2024; 10(2).

PMID: 38392826 PMC: 10889981. DOI: 10.3390/jof10020155.


Transcriptome Analysis Reveals Mycelial and Fruiting Responses to Lithium Chloride in .

Chan P, Kwan H, Xie Y, Wong K, Chang J J Fungi (Basel). 2024; 10(2).

PMID: 38392812 PMC: 10890143. DOI: 10.3390/jof10020140.


The Deletion of Revealed Its Important Roles in Osmotic Stress Tolerance, Amino Acid and Sugar Metabolism, and the Reproduction Process of .

Ding X, Liu W, Liu K, Gao X, Liu Y J Fungi (Basel). 2024; 10(1).

PMID: 38248946 PMC: 10820851. DOI: 10.3390/jof10010036.


RNA-Seq-Based Transcriptome Analysis of Nitric Oxide Scavenging Response in .

Yu N, Veerana M, Ketya W, Sun H, Park G J Fungi (Basel). 2023; 9(10).

PMID: 37888241 PMC: 10607626. DOI: 10.3390/jof9100985.


Effects of LPS from , a Purple Non-Sulfur Bacterium (PNSB), on the Gene Expression of Rice Root.

Iwai R, Uchida S, Yamaguchi S, Nagata D, Koga A, Hayashi S Microorganisms. 2023; 11(7).

PMID: 37512850 PMC: 10383378. DOI: 10.3390/microorganisms11071676.


References
1.
Horvath I, Glatz A, Nakamoto H, Mishkind M, Munnik T, Saidi Y . Heat shock response in photosynthetic organisms: membrane and lipid connections. Prog Lipid Res. 2012; 51(3):208-20. DOI: 10.1016/j.plipres.2012.02.002. View

2.
Alleman B, Logan B, Gilbertson R . Toxicity of pentachlorophenol to six species of white rot fungi as a function of chemical dose. Appl Environ Microbiol. 1992; 58(12):4048-50. PMC: 183225. DOI: 10.1128/aem.58.12.4048-4050.1992. View

3.
Hong S, Lee S, Chung J, Jung H, Singh S, Mondal S . Site-specific mutagenesis of yeast 2-Cys peroxiredoxin improves heat or oxidative stress tolerance by enhancing its chaperone or peroxidase function. Protoplasma. 2016; 254(1):327-334. DOI: 10.1007/s00709-016-0948-0. View

4.
Gill B, Kumar S, Navgeet . Ganoderic acid targeting nuclear factor erythroid 2-related factor 2 in lung cancer. Tumour Biol. 2017; 39(3):1010428317695530. DOI: 10.1177/1010428317695530. View

5.
Ramirez L, Oguiza J, Perez G, Lavin J, Omarini A, Santoyo F . Genomics and transcriptomics characterization of genes expressed during postharvest at 4°C by the edible basidiomycete Pleurotus ostreatus. Int Microbiol. 2011; 14(2):111-20. DOI: 10.2436/20.1501.01.141. View