Maria S. Peresin

Has grant

University Name
Country flag
United States

Research Interests

Explore related searches

Contact this professor

LinkedIn
ORCID
Google Scholar

Recent Grants

Grant: Close

CAREER: Unlocking the potential of natural polymers for efficient removal of emerging contaminants from drinking water.

Open Date: 2021-04-01

Close Date: 2026-03-31

Grant: Close

Development of nanocellulose-based solutions for global challenges

Open Date: 2020-06-16

Close Date: 2024-09-30

Grant: Close

Nanocellulose-based materials for novel applications

Open Date: 2017-10-01

Close Date: 2022-09-30

Grant: Close

Assessment of the interfacial phenomena on lignin-containing nanofibrillated cellulose and its impact on nanocomposite materials performance

Open Date: 2014-01-09

Close Date: 2016-11-09

Grant: Close

Tunable lignocellulose-based responsive films

Open Date: 2014-01-02

Close Date: 2017-04-30

Articles (20)

Rapid production of <i>Plasmodium</i> sporozoite detection paper dipstick assays using cellulose nanocrystals: Proof‐of‐concept for bio‐based, locally developed, point‐of‐care devices

Enhanced and rapid surveillance for diseases is critical to public health and meeting United Nations' Sustainable Development Goal for Good Health and Well‐being by allowing for targeted and accelerated prevention and control response strategies. Human malaria, caused by Plasmodium spp. and transmitted by mosquitoes is no exception. Advances in sustainable materials provide an opportunity to improve fast, sustainable, and equitable testing assays. Here, naturally abundant polymers and biomaterials, such as cellulose nanocrystals (CNCs) and chitosan, were used to increase antibody density deposition on the assay detection line when compared to traditional free antibody deposition, and thus the sensitivity, of easily assembled rapid tests designed to detect Plasmodium vivax infective (sporozoite) parasites in mosquitoes, a critical indicator of malaria transmission. The immobilization of antibodies onto chitosan‐coated CNCs allowed for antigen detection with a lower number of antibodies used in each test; likewise, the immobilization allowed to directly place the CNC‐Ab without the traditionally needed blockers layer on the paper like bovine serum albumin (BSA). This bio‐based prototype of a paper‐based dipstick assay shows a promising pathway for the development of rapid disease surveillance tools using sustainable and globally available materials.

Year:

2023

Collaborators (6)

Munkaila Musah

Assistant Professor

University of Massachusetts Boston

UNITED STATES

Matthew Waters

Assistant Professor

Auburn University

UNITED STATES

Charles Frazier

Professor

Virginia Polytechnic Institute and State University

UNITED STATES

Jason Street

Assistant Professor

Mississippi State University

UNITED STATES

Virginia A. Davis

Auburn University

UNITED STATES

Diego Gomez-Maldonado

Assistant Professor

Texas Tech University

UNITED STATES
Social connections

How do I reach out?

Sign in for free to see their profile details and contact information.

Meet Kite AI