January 2026

Conference Paper

Designing Antifouling and Antimicrobial Interfaces: Structural Characterization using CryoEM, Automated Microscopy, and AI Image Segmentation

By:
Williams, Alexis N; Massenburg, Lynnicia N; Madugula, Sita Sirisha ; Cox, Spenser R; Bible, Amber; Millan-Solsona, Ruben; Blake, Marea J; Harris, Chanda R; Wilson, Leslie L; Checa Nualart, Marti ; Zhang, Lance X; Lavrik, Nickolay V; Vasudevan, Rama K; Yuan, Yue ; Kumar, Rajeev ; Wang, Hanyu ; Collins, Liam F; Doughty, Benjamin L; Morrell-Falvey, Jennifer L; Retterer, Scott T
Journal Name:
Microscopy and Microanalysis
Volume:
31
Issue Number:
Supp1
Publication Date:
January 14, 2026
Conference Name:
2025 Microscopy and Microanalysis (M&M 2025) Annual Conference
Conference Location:
Salt Lake City, Utah, United States of America
Conference Sponsor:
Microscopy Society of America (MSA)
View DOI Listing:
https://doi.org/10.1093/mam/ozaf048.955

Abstract

The design of functionalized surfaces for interactions with biological systems is critical across sectors such as healthcare, energy, and agriculture. Tailoring materials for specific applications, such as antifouling and antimicrobial surfaces, demands a comprehensive understanding of topology and chemistry across multiple length and time scales on both biological and materials systems. This work presents the development and characterization of nanostructured surfaces with controlled topographies and chemistries that enhance bacterial membrane disruption, reduce biofilm formation, and improve antimicrobial and antifouling capabilities. Two specific use cases will be presented - the use of cellulose nanocrystals (CNCs) for bacterial growth inhibition and the development of antifouling surfaces to prevent protein and bacterial adsorption [1-4]. By leveraging large language models (LLMs) for image segmentation and training [5], we enable automated analysis of terabyte-scale cryogenic electron microscopy (cryoEM) datasets. This analysis provides statistical insights into the biotic/abiotic interface and facilitates automated electron microscopy experiments to mitigate time and dose. The integration of cryogenic electron tomography (cryoET) and cryogenic focused ion beam (cryoFIB) milling enables high-resolution, near-native-state imaging and 3D reconstructions of bio/material interfaces [6]. Orthogonal characterization techniques and computational modeling further enhances our understanding, offering a robust platform for the design and optimization of next-generation functional surfaces [7].