Javascript must be enabled to continue!
Fresh extension of Vibrio cholerae competence type IV pili predisposes them for motor-independent retraction
View through CrossRef
ABSTRACT
Bacteria utilize dynamic appendages called type IV pili (T4P) to interact with their environment and mediate a wide variety of functions. Pilus extension is mediated by an extension ATPase motor, commonly called PilB, in all T4P. Pilus retraction, however, can either occur with the aid of an ATPase motor, or in the absence of a retraction motor. While much effort has been devoted to studying motor-dependent retraction, the mechanism and regulation of motor-independent retraction remains poorly characterized. We have previously demonstrated that
Vibrio cholerae
competence T4P undergo motor-independent retraction in the absence of the dedicated retraction ATPases PilT and PilU. Here, we utilize this model system to characterize the factors that influence motor-independent retraction. We find that freshly extended pili frequently undergo motor-independent retraction, but if these pili fail to retract immediately, they remain statically extended on the cell surface. Importantly, we show that these static pili can still undergo motor-dependent retraction via tightly regulated ectopic expression of PilT, suggesting that these T4P are not broken, but simply cannot undergo motor-independent retraction. Through additional genetic and biophysical characterization of pili, we suggest that pilus filaments undergo conformational changes during dynamic extension and retraction. We propose that only some conformations, like those adopted by freshly extended pili, are capable of undergoing motor-independent retraction. Together, these data highlight the versatile mechanisms that regulate T4P dynamic activity and provide additional support for the long-standing hypothesis that motor-independent retraction occurs via spontaneous depolymerization.
SIGNIFICANCE
Extracellular pilus fibers are critical to the virulence and persistence of many pathogenic bacteria. A crucial function for most pili is the dynamic ability to extend and retract from the cell surface. Inhibiting this dynamic pilus activity represents an attractive approach for therapeutic interventions, however, a detailed mechanistic understanding of this process is currently lacking. Here, we use the competence pilus of
Vibrio cholerae
to study how pili retract in the absence of dedicated retraction motors. Our results reveal a novel regulatory mechanism of pilus retraction that is an inherent property of the external pilus filament. Thus, understanding the conformational changes that pili adopt under different conditions may be critical for the development of novel therapeutics that aim to target the dynamic activity of these structures.
Title: Fresh extension of
Vibrio cholerae
competence type IV pili predisposes them for motor-independent retraction
Description:
ABSTRACT
Bacteria utilize dynamic appendages called type IV pili (T4P) to interact with their environment and mediate a wide variety of functions.
Pilus extension is mediated by an extension ATPase motor, commonly called PilB, in all T4P.
Pilus retraction, however, can either occur with the aid of an ATPase motor, or in the absence of a retraction motor.
While much effort has been devoted to studying motor-dependent retraction, the mechanism and regulation of motor-independent retraction remains poorly characterized.
We have previously demonstrated that
Vibrio cholerae
competence T4P undergo motor-independent retraction in the absence of the dedicated retraction ATPases PilT and PilU.
Here, we utilize this model system to characterize the factors that influence motor-independent retraction.
We find that freshly extended pili frequently undergo motor-independent retraction, but if these pili fail to retract immediately, they remain statically extended on the cell surface.
Importantly, we show that these static pili can still undergo motor-dependent retraction via tightly regulated ectopic expression of PilT, suggesting that these T4P are not broken, but simply cannot undergo motor-independent retraction.
Through additional genetic and biophysical characterization of pili, we suggest that pilus filaments undergo conformational changes during dynamic extension and retraction.
We propose that only some conformations, like those adopted by freshly extended pili, are capable of undergoing motor-independent retraction.
Together, these data highlight the versatile mechanisms that regulate T4P dynamic activity and provide additional support for the long-standing hypothesis that motor-independent retraction occurs via spontaneous depolymerization.
SIGNIFICANCE
Extracellular pilus fibers are critical to the virulence and persistence of many pathogenic bacteria.
A crucial function for most pili is the dynamic ability to extend and retract from the cell surface.
Inhibiting this dynamic pilus activity represents an attractive approach for therapeutic interventions, however, a detailed mechanistic understanding of this process is currently lacking.
Here, we use the competence pilus of
Vibrio cholerae
to study how pili retract in the absence of dedicated retraction motors.
Our results reveal a novel regulatory mechanism of pilus retraction that is an inherent property of the external pilus filament.
Thus, understanding the conformational changes that pili adopt under different conditions may be critical for the development of novel therapeutics that aim to target the dynamic activity of these structures.
Related Results
The electrically conductive pili of
Geobacter soli
The electrically conductive pili of
Geobacter soli
Abstract
Electrically conductive pili (e-pili) enable electron transport over multiple cell lengths to extracellular environments and play an imp...
Retraction ATPase motors from three orthologous type IVa pilus systems support promiscuous retraction of the
Vibrio cholerae
competence pilus
Retraction ATPase motors from three orthologous type IVa pilus systems support promiscuous retraction of the
Vibrio cholerae
competence pilus
ABSTRACT
Bacterial surface appendages called type IVa pili (T4aP) promote diverse activities including DNA uptake, twitching motility, and virule...
Colony morphology and molecular identification of Vibrio spp. on green mussels (Perna viridis) in Yogyakarta, Indonesia tourism beach areas
Colony morphology and molecular identification of Vibrio spp. on green mussels (Perna viridis) in Yogyakarta, Indonesia tourism beach areas
Abstract. Hikmawati F, Susilowati A, Setyaningsih R. 2019. Colony morphology and molecular identification of Vibrio spp. on green mussels (Perna viridis) in Yogyakarta, Indonesia t...
Comparative Evaluation of Gingival Displacement by Using Retraction Paste and Retraction Cord- In-Vivo Pilot Study
Comparative Evaluation of Gingival Displacement by Using Retraction Paste and Retraction Cord- In-Vivo Pilot Study
Marginal integrity is one of the important principles of Tooth preparation. To achieve this, a satisfactory gingival displacement procedure is necessary. Aim of this study was to d...
The PilT retraction ATPase promotes both extension and retraction of the MSHA type IVa pilus in
Vibrio cholerae
The PilT retraction ATPase promotes both extension and retraction of the MSHA type IVa pilus in
Vibrio cholerae
ABSTRACT
Diverse bacterial species use type IVa pili (T4aP) to interact with their environments. The dynamic extension and retraction of T4aP is critical for their ...
Identification of Seven Types of Pili in Mycobacterium tuberculosis: Using Atomic Force Microscopy
Identification of Seven Types of Pili in Mycobacterium tuberculosis: Using Atomic Force Microscopy
Background:
Pili are polymeric, hydrophobic, proteinaceous structures generally composed of a major repeating subunit called pilin and, in some cases, a minor tip-assoc...
DNA Transformation and Type IV Pili in Neisseria gonorrhoeae
DNA Transformation and Type IV Pili in Neisseria gonorrhoeae
Transformation de l'ADN et pili de type IV chez Neisseria gonorrhoeae
La résistance aux antibiotiques, évidente chez des souches telles que Neisseria gonorrhoeae, e...
Uji Antibakteri Rhizopus sp. Asal Inokulum Tempe terhadap Vibrio cholerae
Uji Antibakteri Rhizopus sp. Asal Inokulum Tempe terhadap Vibrio cholerae
Rhizopus sp. merupakan kapang yang digunakan dalam fermentasi tempe. Kapang Rhizopus pada tempe telah dikaji manfaatnya dalam mengurangi kejadian diare pada Escherichia coli dan Sa...

