Cargando…

The rhg1‐a (Rhg1 low‐copy) nematode resistance source harbors a copia‐family retrotransposon within the Rhg1‐encoded α‐SNAP gene

Soybean growers widely use the Resistance to Heterodera glycines 1 (Rhg1) locus to reduce yield losses caused by soybean cyst nematode (SCN). Rhg1 is a tandemly repeated four gene block. Two classes of SCN resistance‐conferring Rhg1 haplotypes are recognized: rhg1‐a (“Peking‐type,” low‐copy number,...

Descripción completa

Detalles Bibliográficos
Autores principales: Bayless, Adam M., Zapotocny, Ryan W., Han, Shaojie, Grunwald, Derrick J., Amundson, Kaela K., Bent, Andrew F.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6712407/
https://www.ncbi.nlm.nih.gov/pubmed/31468029
http://dx.doi.org/10.1002/pld3.164
_version_ 1783446674650169344
author Bayless, Adam M.
Zapotocny, Ryan W.
Han, Shaojie
Grunwald, Derrick J.
Amundson, Kaela K.
Bent, Andrew F.
author_facet Bayless, Adam M.
Zapotocny, Ryan W.
Han, Shaojie
Grunwald, Derrick J.
Amundson, Kaela K.
Bent, Andrew F.
author_sort Bayless, Adam M.
collection PubMed
description Soybean growers widely use the Resistance to Heterodera glycines 1 (Rhg1) locus to reduce yield losses caused by soybean cyst nematode (SCN). Rhg1 is a tandemly repeated four gene block. Two classes of SCN resistance‐conferring Rhg1 haplotypes are recognized: rhg1‐a (“Peking‐type,” low‐copy number, three or fewer Rhg1 repeats) and rhg1‐b (“PI 88788‐type,” high‐copy number, four or more Rhg1 repeats). The rhg1‐a and rhg1‐b haplotypes encode α‐SNAP (alpha‐Soluble NSF Attachment Protein) variants α‐SNAP(Rhg1)LC and α‐SNAP(Rhg1)HC, respectively, with differing atypical C‐terminal domains, that contribute to SCN resistance. Here we report that rhg1‐a soybean accessions harbor a copia retrotransposon within their Rhg1 Glyma.18G022500 (α‐SNAP‐encoding) gene. We termed this retrotransposon “RAC,” for Rhg1 alpha‐SNAP copia. Soybean carries multiple RAC‐like retrotransposon sequences. The Rhg1 RAC insertion is in the Glyma.18G022500 genes of all true rhg1‐a haplotypes we tested and was not detected in any examined rhg1‐b or Rhg1(WT) (single‐copy) soybeans. RAC is an intact element residing within intron 1, anti‐sense to the rhg1‐a α‐SNAP open reading frame. RAC has intrinsic promoter activities, but overt impacts of RAC on transgenic α‐SNAP(Rhg1)LC mRNA and protein abundance were not detected. From the native rhg1‐a RAC(+) genomic context, elevated α‐SNAP(Rhg1)LC protein abundance was observed in syncytium cells, as was previously observed for α‐SNAP(Rhg1)HC (whose rhg1‐b does not carry RAC). Using a SoySNP50K SNP corresponding with RAC presence, just ~42% of USDA accessions bearing previously identified rhg1‐a SoySNP50K SNP signatures harbor the RAC insertion. Subsequent analysis of several of these putative rhg1‐a accessions lacking RAC revealed that none encoded α‐SNAP(Rhg1)LC, and thus, they are not rhg1‐a. rhg1‐a haplotypes are of rising interest, with Rhg4, for combating SCN populations that exhibit increased virulence against the widely used rhg1‐b resistance. The present study reveals another unexpected structural feature of many Rhg1 loci, and a selectable feature that is predictive of rhg1‐a haplotypes.
format Online
Article
Text
id pubmed-6712407
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-67124072019-08-29 The rhg1‐a (Rhg1 low‐copy) nematode resistance source harbors a copia‐family retrotransposon within the Rhg1‐encoded α‐SNAP gene Bayless, Adam M. Zapotocny, Ryan W. Han, Shaojie Grunwald, Derrick J. Amundson, Kaela K. Bent, Andrew F. Plant Direct Original Research Soybean growers widely use the Resistance to Heterodera glycines 1 (Rhg1) locus to reduce yield losses caused by soybean cyst nematode (SCN). Rhg1 is a tandemly repeated four gene block. Two classes of SCN resistance‐conferring Rhg1 haplotypes are recognized: rhg1‐a (“Peking‐type,” low‐copy number, three or fewer Rhg1 repeats) and rhg1‐b (“PI 88788‐type,” high‐copy number, four or more Rhg1 repeats). The rhg1‐a and rhg1‐b haplotypes encode α‐SNAP (alpha‐Soluble NSF Attachment Protein) variants α‐SNAP(Rhg1)LC and α‐SNAP(Rhg1)HC, respectively, with differing atypical C‐terminal domains, that contribute to SCN resistance. Here we report that rhg1‐a soybean accessions harbor a copia retrotransposon within their Rhg1 Glyma.18G022500 (α‐SNAP‐encoding) gene. We termed this retrotransposon “RAC,” for Rhg1 alpha‐SNAP copia. Soybean carries multiple RAC‐like retrotransposon sequences. The Rhg1 RAC insertion is in the Glyma.18G022500 genes of all true rhg1‐a haplotypes we tested and was not detected in any examined rhg1‐b or Rhg1(WT) (single‐copy) soybeans. RAC is an intact element residing within intron 1, anti‐sense to the rhg1‐a α‐SNAP open reading frame. RAC has intrinsic promoter activities, but overt impacts of RAC on transgenic α‐SNAP(Rhg1)LC mRNA and protein abundance were not detected. From the native rhg1‐a RAC(+) genomic context, elevated α‐SNAP(Rhg1)LC protein abundance was observed in syncytium cells, as was previously observed for α‐SNAP(Rhg1)HC (whose rhg1‐b does not carry RAC). Using a SoySNP50K SNP corresponding with RAC presence, just ~42% of USDA accessions bearing previously identified rhg1‐a SoySNP50K SNP signatures harbor the RAC insertion. Subsequent analysis of several of these putative rhg1‐a accessions lacking RAC revealed that none encoded α‐SNAP(Rhg1)LC, and thus, they are not rhg1‐a. rhg1‐a haplotypes are of rising interest, with Rhg4, for combating SCN populations that exhibit increased virulence against the widely used rhg1‐b resistance. The present study reveals another unexpected structural feature of many Rhg1 loci, and a selectable feature that is predictive of rhg1‐a haplotypes. John Wiley and Sons Inc. 2019-08-28 /pmc/articles/PMC6712407/ /pubmed/31468029 http://dx.doi.org/10.1002/pld3.164 Text en © 2019 The Authors. Plant Direct published by American Society of Plant Biologists, Society for Experimental Biology and John Wiley & Sons Ltd. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Research
Bayless, Adam M.
Zapotocny, Ryan W.
Han, Shaojie
Grunwald, Derrick J.
Amundson, Kaela K.
Bent, Andrew F.
The rhg1‐a (Rhg1 low‐copy) nematode resistance source harbors a copia‐family retrotransposon within the Rhg1‐encoded α‐SNAP gene
title The rhg1‐a (Rhg1 low‐copy) nematode resistance source harbors a copia‐family retrotransposon within the Rhg1‐encoded α‐SNAP gene
title_full The rhg1‐a (Rhg1 low‐copy) nematode resistance source harbors a copia‐family retrotransposon within the Rhg1‐encoded α‐SNAP gene
title_fullStr The rhg1‐a (Rhg1 low‐copy) nematode resistance source harbors a copia‐family retrotransposon within the Rhg1‐encoded α‐SNAP gene
title_full_unstemmed The rhg1‐a (Rhg1 low‐copy) nematode resistance source harbors a copia‐family retrotransposon within the Rhg1‐encoded α‐SNAP gene
title_short The rhg1‐a (Rhg1 low‐copy) nematode resistance source harbors a copia‐family retrotransposon within the Rhg1‐encoded α‐SNAP gene
title_sort rhg1‐a (rhg1 low‐copy) nematode resistance source harbors a copia‐family retrotransposon within the rhg1‐encoded α‐snap gene
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6712407/
https://www.ncbi.nlm.nih.gov/pubmed/31468029
http://dx.doi.org/10.1002/pld3.164
work_keys_str_mv AT baylessadamm therhg1arhg1lowcopynematoderesistancesourceharborsacopiafamilyretrotransposonwithintherhg1encodedasnapgene
AT zapotocnyryanw therhg1arhg1lowcopynematoderesistancesourceharborsacopiafamilyretrotransposonwithintherhg1encodedasnapgene
AT hanshaojie therhg1arhg1lowcopynematoderesistancesourceharborsacopiafamilyretrotransposonwithintherhg1encodedasnapgene
AT grunwaldderrickj therhg1arhg1lowcopynematoderesistancesourceharborsacopiafamilyretrotransposonwithintherhg1encodedasnapgene
AT amundsonkaelak therhg1arhg1lowcopynematoderesistancesourceharborsacopiafamilyretrotransposonwithintherhg1encodedasnapgene
AT bentandrewf therhg1arhg1lowcopynematoderesistancesourceharborsacopiafamilyretrotransposonwithintherhg1encodedasnapgene
AT baylessadamm rhg1arhg1lowcopynematoderesistancesourceharborsacopiafamilyretrotransposonwithintherhg1encodedasnapgene
AT zapotocnyryanw rhg1arhg1lowcopynematoderesistancesourceharborsacopiafamilyretrotransposonwithintherhg1encodedasnapgene
AT hanshaojie rhg1arhg1lowcopynematoderesistancesourceharborsacopiafamilyretrotransposonwithintherhg1encodedasnapgene
AT grunwaldderrickj rhg1arhg1lowcopynematoderesistancesourceharborsacopiafamilyretrotransposonwithintherhg1encodedasnapgene
AT amundsonkaelak rhg1arhg1lowcopynematoderesistancesourceharborsacopiafamilyretrotransposonwithintherhg1encodedasnapgene
AT bentandrewf rhg1arhg1lowcopynematoderesistancesourceharborsacopiafamilyretrotransposonwithintherhg1encodedasnapgene