» Articles » PMID: 23454293

Identification of MiRNAs Involved in Long-term Simulated Microgravity Response in Solanum Lycopersicum

Overview
Specialties Biochemistry
Biology
Date 2013 Mar 5
PMID 23454293
Citations 5
Authors
Affiliations
Soon will be listed here.
Abstract

To identify the miRNAs associated with the simulated microgravity response in plants and to ascertain the regulation network mediated by miRNAs under simulated microgravity conditions, we constructed a miRNA library by direct cloning method and analyzed the library. Seven miRNAs that are conserved in other plants were cloned for the first time in Solanum lycopersicum under simulated microgravity condition. The expressions of six of the seven miRNAs were up-regulated, especially by long-term simulated microgravity. Gene ontology analysis showed that most of the predicted targeted genes were involved in transcription regulation, signal transduction and stress response, implying a complicated relationship among the external signal, internal transduction and final phenotype. Six of the predicted targets were validated by 5' RACE and reverse transcription real-time quantitative PCR. The results showed that with increasing miRNA expression levels, the corresponding target genes were down-regulated. The target gene of one of miRNAs, miR159e*, was thought to be associated with an increasing of starch amount under microgravity condition. A multi-stresses response network mediated by miRNAs under simulated microgravity condition was proposed. Cis-elements located in the upstream sequences of each miRNA were identified and their roles in gene regulation were investigated. In addition to the seven miRNAs that had homologs in other plants, six conserved S. lycopersicum miRNAs were identified. In the study, miRNAs were identified in S. lycopersicum for the first time under long-term simulated microgravity condition, which will help reveal the regulation mechanism mediated by miRNAs under simulated microgravity condition and adaptation to Earth's gravity.

Citing Articles

Tomato MicroRNAs and Their Functions.

Arazi T, Khedia J Int J Mol Sci. 2022; 23(19).

PMID: 36233279 PMC: 9569937. DOI: 10.3390/ijms231911979.


Efficient preservation of sprouting vegetables under simulated microgravity conditions.

Makino Y, Ichinose K, Yoshimura M, Kawahara Y, Yuge L PLoS One. 2020; 15(10):e0240809.

PMID: 33057413 PMC: 7561153. DOI: 10.1371/journal.pone.0240809.


New insights into tomato microRNAs.

de Sousa Cardoso T, Alves T, Caneschi C, Santana D, Fernandes-Brum C, Dos Reis G Sci Rep. 2018; 8(1):16069.

PMID: 30375421 PMC: 6207730. DOI: 10.1038/s41598-018-34202-3.


Cold-responsive miRNAs and their target genes in the wild eggplant species Solanum aculeatissimum.

Yang X, Liu F, Zhang Y, Wang L, Cheng Y BMC Genomics. 2017; 18(1):1000.

PMID: 29287583 PMC: 5747154. DOI: 10.1186/s12864-017-4341-y.


Growing tissues in real and simulated microgravity: new methods for tissue engineering.

Grimm D, Wehland M, Pietsch J, Aleshcheva G, Wise P, van Loon J Tissue Eng Part B Rev. 2014; 20(6):555-66.

PMID: 24597549 PMC: 4241976. DOI: 10.1089/ten.TEB.2013.0704.