» Articles » PMID: 29133370

A Mucin-Like Protein of Planthopper Is Required for Feeding and Induces Immunity Response in Plants

Overview
Journal Plant Physiol
Specialty Physiology
Date 2017 Nov 15
PMID 29133370
Citations 59
Authors
Affiliations
Soon will be listed here.
Abstract

The brown planthopper, , is a pest that threatens rice () production worldwide. While feeding on rice plants, planthoppers secrete saliva, which plays crucial roles in nutrient ingestion and modulating plant defense responses, although the specific functions of salivary proteins remain largely unknown. We identified an -secreted mucin-like protein (NlMLP) by transcriptome and proteome analyses and characterized its function, both in brown planthopper and in plants. is highly expressed in salivary glands and is secreted into rice during feeding. Inhibition of expression in planthoppers disturbs the formation of salivary sheaths, thereby reducing their performance. In plants, NlMLP induces cell death, the expression of defense-related genes, and callose deposition. These defense responses are related to Ca mobilization and the MEK2 MAP kinase and jasmonic acid signaling pathways. The active region of NlMLP that elicits plant responses is located in its carboxyl terminus. Our work provides a detailed characterization of a salivary protein from a piercing-sucking insect other than aphids. Our finding that the protein functions in plant immune responses offers new insights into the mechanism underlying interactions between plants and herbivorous insects.

Citing Articles

Spider mite tetranins elicit different defense responses in different host habitats.

Endo Y, Tanaka M, Uemura T, Tanimura K, Desaki Y, Ozawa R Plant J. 2025; 121(5):e70046.

PMID: 40038832 PMC: 11880414. DOI: 10.1111/tpj.70046.


Nymphal feeding suppresses oviposition-induced indirect plant defense in rice.

Li J, Liu X, Xiao W, Huangfu J, Schuman M, Baldwin I Nat Commun. 2025; 16(1):508.

PMID: 39779696 PMC: 11711504. DOI: 10.1038/s41467-025-55816-y.


Insight into Rice Resistance to the Brown Planthopper: Gene Cloning, Functional Analysis, and Breeding Applications.

Ye Y, Xiong S, Guan X, Tang T, Zhu Z, Zhu X Int J Mol Sci. 2025; 25(24.

PMID: 39769161 PMC: 11678690. DOI: 10.3390/ijms252413397.


The Roles of Phytohormones in Plant Defense Mechanisms Against the Brown Planthopper.

Wang H, Zha W, Huang A, Wu Y, Shi S, Zhou L Genes (Basel). 2025; 15(12.

PMID: 39766846 PMC: 11675305. DOI: 10.3390/genes15121579.


Identification and Functional Analysis of Three Genes in .

Jing S, Wang F, Ren A, Zheng F, Yu B, Xu J Insects. 2024; 15(11).

PMID: 39590466 PMC: 11595156. DOI: 10.3390/insects15110867.


References
1.
Will T, Vilcinskas A . The structural sheath protein of aphids is required for phloem feeding. Insect Biochem Mol Biol. 2014; 57:34-40. DOI: 10.1016/j.ibmb.2014.12.005. View

2.
Wu J, Hettenhausen C, Meldau S, Baldwin I . Herbivory rapidly activates MAPK signaling in attacked and unattacked leaf regions but not between leaves of Nicotiana attenuata. Plant Cell. 2007; 19(3):1096-122. PMC: 1867352. DOI: 10.1105/tpc.106.049353. View

3.
Hann D, Rathjen J . Early events in the pathogenicity of Pseudomonas syringae on Nicotiana benthamiana. Plant J. 2007; 49(4):607-18. DOI: 10.1111/j.1365-313X.2006.02981.x. View

4.
Bos J, Prince D, Pitino M, Maffei M, Win J, Hogenhout S . A functional genomics approach identifies candidate effectors from the aphid species Myzus persicae (green peach aphid). PLoS Genet. 2010; 6(11):e1001216. PMC: 2987835. DOI: 10.1371/journal.pgen.1001216. View

5.
Zha W, Peng X, Chen R, Du B, Zhu L, He G . Knockdown of midgut genes by dsRNA-transgenic plant-mediated RNA interference in the hemipteran insect Nilaparvata lugens. PLoS One. 2011; 6(5):e20504. PMC: 3105074. DOI: 10.1371/journal.pone.0020504. View