Recessive resistance in Pisum sativum and potyvirus pathotype resolved in a gene-for-cistron correspondence between host and virus

被引:88
作者
Johansen, IE [1 ]
Lund, OS [1 ]
Hjulsager, CK [1 ]
Laursen, J [1 ]
机构
[1] Danish Inst Agr Sci, Biotechnol Grp, DK-1871 Frederiksberg C, Denmark
关键词
D O I
10.1128/JVI.75.14.6609-6614.2001
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Pea seed-borne mosaic potyvirus (PSbMV) isolates are divided into pathotypes P-1, P-2, and P-4 according to their infection profile on a panel of Pisum sativum lines. P. sativum PI 269818 is resistant to P-1 and P-2 isolates and is susceptible to P-4 isolates. Resistance to P-1 is inherited as a single recessive gene, denoted sbm-1, and the pathogenicity determinant has previously been mapped to the virus-coded protein VPg. In the cultivar Bonneville, a second recessive gene, sbm-2, confers specific resistance to P-2. By exchanging cistrons between a P-2 and a P-4 isolate, the P3-6k1 cistron was identified as the PSbMV host-specific pathogenicity determinant on Bonneville. Exchange of P3-6k1 did not affect infection on PI 269818, and infection of Bonneville was not altered by substitution of the VPg cistron, indicating that P3-6k1 and VPg are independent determinants of pathotype-specific infectivity. On PI 269818 the pathogenicity determinant of both P-l and P-2 mapped to the N terminus of VPg. This suggests that VPg from the P-1 and P-2 isolates are functionally similar on this host and that resistance to P-1 and P-2 in PI 269818 may operate by the same mechanism. Identification of VPg-sbm-1 and P3-6k1-sbm-2 as independent pairs of genetic interactors between PSbMV and P. sativum provides a simple explanation of the three known pathotypes of PSbMV. Furthermore, analysis of P-glucuronidase-tagged P-2 virus indicated that sbm-2 resistance affected an early step in infection, implying that the P3-6k1 region plays a critical role in potyvirus replication or cell-to-cell movement.
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页码:6609 / 6614
页数:6
相关论文
共 40 条
[1]   3 PEA SEED-BORNE MOSAIC-VIRUS PATHOTYPES FROM PEA AND LENTIL GERM PLASM [J].
ALCONERO, R ;
PROVVIDENTI, R ;
GONSALVES, D .
PLANT DISEASE, 1986, 70 (08) :783-786
[2]  
BORGSTROM B, IN PRESS MOL PLANT M
[3]   The barley mlo gene: A novel control element of plant pathogen resistance [J].
Buschges, R ;
Hollricher, K ;
Panstruga, R ;
Simons, G ;
Wolter, M ;
Frijters, A ;
vanDaelen, R ;
vanderLee, T ;
Diergaarde, P ;
Groenendijk, J ;
Topsch, S ;
Vos, P ;
Salamini, F ;
Schulze-Lefert, P .
CELL, 1997, 88 (05) :695-705
[4]   A 2ND PROTEINASE ENCODED BY A PLANT POTYVIRUS GENOME [J].
CARRINGTON, JC ;
CARY, SM ;
PARKS, TD ;
DOUGHERTY, WG .
EMBO JOURNAL, 1989, 8 (02) :365-370
[5]   INTERNAL CLEAVAGE AND TRANS-PROTEOLYTIC ACTIVITIES OF THE VPG-PROTEINASE (NIA) OF TOBACCO ETCH POTYVIRUS IN-VIVO [J].
CARRINGTON, JC ;
HALDEMAN, R ;
DOLJA, VV ;
RESTREPOHARTWIG, MA .
JOURNAL OF VIROLOGY, 1993, 67 (12) :6995-7000
[6]   SPONTANEOUS MUTAGENESIS OF A PLANT POTYVIRUS GENOME AFTER INSERTION OF A FOREIGN GENE [J].
DOLJA, VV ;
HERNDON, KL ;
PIRONE, TP ;
CARRINGTON, JC .
JOURNAL OF VIROLOGY, 1993, 67 (10) :5968-5975
[7]   TAGGING OF PLANT POTYVIRUS REPLICATION AND MOVEMENT BY INSERTION OF BETA-GLUCURONIDASE INTO THE VIRAL POLYPROTEIN [J].
DOLJA, VV ;
MCBRIDE, HJ ;
CARRINGTON, JC .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1992, 89 (21) :10208-10212
[8]   Structure, function and evolution of plant disease resistance genes [J].
Ellis, J ;
Dodds, P ;
Pryor, T .
CURRENT OPINION IN PLANT BIOLOGY, 2000, 3 (04) :278-284
[9]   THE GENETICS OF PLANT-VIRUS INTERACTIONS - IMPLICATIONS FOR PLANT-BREEDING [J].
FRASER, RSS .
EUPHYTICA, 1992, 63 (1-2) :175-185
[10]   PROTEOLYTIC PROCESSING OF THE PLUM POX POTYVIRUS POLYPROTEIN BY THE NLA PROTEASE AT A NOVEL CLEAVAGE SITE [J].
GARCIA, JA ;
MARTIN, MT ;
CERVERA, MT ;
RIECHMANN, JL .
VIROLOGY, 1992, 188 (02) :697-703