TY - JOUR
T1 - Structure of the Mycobacterium tuberculosis type VII secretion system chaperone EspG5 in complex with PE25-PPE41 dimer
AU - Korotkova, Natalia
AU - Freire, Diana
AU - Phan, Trang H.
AU - Ummels, Roy
AU - Creekmore, Christopher C.
AU - Evans, Timothy J.
AU - Wilmanns, Matthias
AU - Bitter, Wilbert
AU - Parret, Annabel H.A.
AU - Houben, Edith N.G.
AU - Korotkov, Konstantin V.
N1 - Publisher Copyright:
© 2014 John Wiley & Sons Ltd.
PY - 2014/10/1
Y1 - 2014/10/1
N2 - The growth or virulence of Mycobacterium tuberculosis bacilli depends on homologous type VII secretion systems, ESX-1, ESX-3 and ESX-5, which export a number of protein effectors across membranes to the bacterial surface and environment. PE and PPE proteins represent two large families of highly polymorphic proteins that are secreted by these ESX systems. Recently, it was shown that these proteins require system-specific cytoplasmic chaperones for secretion. Here, we report the crystal structure of M. tuberculosisESX-5-secreted PE25-PPE41 heterodimer in complex with the cytoplasmic chaperone EspG5. EspG5 represents a novel fold that is unrelated to previously characterized secretion chaperones. Functional analysis of the EspG5-binding region uncovered a hydrophobic patch on PPE41 that promotes dimer aggregation, and the chaperone effectively abolishes this process. We show that PPE41 contains a characteristic chaperone-binding sequence, the hh motif, which is highly conserved among ESX-1-, ESX-3- and ESX-5-specific PPE proteins. Disrupting the interaction between EspG5 and three different PPE target proteins by introducing different point mutations generally affected protein secretion. We further demonstrate that the EspG5 chaperone plays an important role in the ESX secretion mechanism by keeping aggregation-prone PE-PPE proteins in their soluble state.
AB - The growth or virulence of Mycobacterium tuberculosis bacilli depends on homologous type VII secretion systems, ESX-1, ESX-3 and ESX-5, which export a number of protein effectors across membranes to the bacterial surface and environment. PE and PPE proteins represent two large families of highly polymorphic proteins that are secreted by these ESX systems. Recently, it was shown that these proteins require system-specific cytoplasmic chaperones for secretion. Here, we report the crystal structure of M. tuberculosisESX-5-secreted PE25-PPE41 heterodimer in complex with the cytoplasmic chaperone EspG5. EspG5 represents a novel fold that is unrelated to previously characterized secretion chaperones. Functional analysis of the EspG5-binding region uncovered a hydrophobic patch on PPE41 that promotes dimer aggregation, and the chaperone effectively abolishes this process. We show that PPE41 contains a characteristic chaperone-binding sequence, the hh motif, which is highly conserved among ESX-1-, ESX-3- and ESX-5-specific PPE proteins. Disrupting the interaction between EspG5 and three different PPE target proteins by introducing different point mutations generally affected protein secretion. We further demonstrate that the EspG5 chaperone plays an important role in the ESX secretion mechanism by keeping aggregation-prone PE-PPE proteins in their soluble state.
UR - http://www.scopus.com/inward/record.url?scp=84916606186&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=84916606186&partnerID=8YFLogxK
U2 - 10.1111/mmi.12770
DO - 10.1111/mmi.12770
M3 - Article
C2 - 25155747
AN - SCOPUS:84916606186
SN - 0950-382X
VL - 94
SP - 367
EP - 382
JO - Molecular Microbiology
JF - Molecular Microbiology
IS - 2
ER -