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  4. Nanoscale Dynamics of Streptococcal Adhesion to AGE-Modified Collagen
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Nanoscale Dynamics of Streptococcal Adhesion to AGE-Modified Collagen

Journal
Journal of Dental Research
ISSN
0022-0345
1544-0591
Date Issued
2023
Author(s)
C. Leiva-Sabadini
P. Tiozzo-Lyon
L. Hidalgo-Galleguillos
L. Rivas
Facultad de Medicina Clínica Alemana Universidad del Desarrollo  
A.I. Robles
A. Fierro
N.P. Barrera
L. Bozec
C.M.A.P. Schuh
Facultad de Medicina Clínica Alemana Universidad del Desarrollo  
S. Aguayo
Type
Resource Types::text::journal::journal article
Scopus ID
2-s2.0-85163037205
WoS ID
WOS:001001310000001
DOI
10.1177/00220345231166294
URL
https://investigadores.udd.cl/handle/123456789/8453
URL Institutional Repository
https://hdl.handle.net/11447/8907
Abstract
<jats:p> The adhesion of initial colonizers such as Streptococcus mutans to collagen is critical for dentinal and root caries progression. One of the most described pathological and aging-associated changes in collagen—including dentinal collagen—is the generation of advanced glycation end-products (AGEs) such as methylglyoxal (MGO)–derived AGEs. Despite previous reports suggesting that AGEs alter bacterial adhesion to collagen, the biophysics driving oral streptococcal attachment to MGO-modified collagen remains largely understudied. Thus, the aim of this work was to unravel the dynamics of the initial adhesion of S. mutans to type I collagen in the presence and absence of MGO-derived AGEs by employing bacterial cell force spectroscopy with atomic force microscopy (AFM). Type I collagen gels were treated with 10 mM MGO to induce AGE formation, which was characterized with microscopy and enzyme-linked immunosorbent assay. Subsequently, AFM cantilevers were functionalized with living S. mutans UA 159 or Streptococcus sanguinis SK 36 cells and probed against collagen surfaces to obtain force curves displaying bacterial attachment in real time, from which the adhesion force, number of events, Poisson analysis, and contour and rupture lengths for each individual detachment event were computed. Furthermore, in silico computer simulation docking studies between the relevant S. mutans UA 159 collagen-binding protein SpaP and collagen were computed, in the presence and absence of MGO. Overall, results showed that MGO modification increased both the number and adhesion force of single-unbinding events between S. mutans and collagen, without altering the contour or rupture lengths. Both experimental and in silico simulations suggest that this effect is due to increased specific and nonspecific forces and interactions between S. mutans UA 159 and MGO-modified collagen substrates. In summary, these results suggest that collagen alterations due to aging and glycation may play a role in early bacterial adherence to oral tissues, associated with conditions such as aging or chronic hyperglycemia, among others. </jats:p>
Cite this document
Leiva-Sabadini, C., Tiozzo-Lyon, P., Hidalgo-Galleguillos, L., Rivas, L., Robles, A. I., Fierro, A., Barrera, N. P., Bozec, L., Schuh, C. M. A. P., & Aguayo, S. (2023). Nanoscale dynamics of streptococcal adhesion to age-modified collagen. Journal of Dental Research, 102(8), 957-964. https://doi.org/10.1177/00220345231166294
Project(s)
Influence of age-derived dental collagen glycation on bacterial adhesion and initial biofilm formation of oral streptococci  
Subjects
aging

; 

atomic force microscopy

; 

bacterial adhesion

; 

biofilms

; 

biophysics

; 

streptococcus mutans

; 

bacterial adhesion

; 

biofilms

; 

collagen

; 

collagen type i

; 

computer simulation

; 

glycation end products, advanced

; 

magnesium oxide

; 

microscopy, atomic force

; 

streptococcus

; 

streptococcus mutans

; 

advanced glycation end product

; 

collagen

; 

collagen type 1

; 

magnesium oxide

; 

atomic force microscopy

; 

bacterium adherence

; 

biofilm

; 

computer simulation

; 

metabolism

; 

procedures

; 

streptococcus

; 

streptococcus mutans
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