Proteolytic Signatures

Proteolytic signatures are characteristic patterns of protein cleavage that reveal which proteases are active, where they act, and how their activity changes in a biological system. They arise when proteases recognize specific amino acid sequences or structural features and hydrolyze peptide bonds, producing measurable fragments or reporter signals that reflect enzyme activity. In bioengineering, these signatures support the design of protease-responsive biosensors, biomaterials, and therapeutic systems, while also enabling analysis of cell behavior and tissue remodeling. Mapping cleavage patterns can therefore connect molecular enzyme activity with disease states, engineered cellular functions, and strategies for controlled drug release.

Proteolytic Signatures - Related Videos

Research

JoVE EoE - Immunodiagnostics

A Fluorogenic Peptide Cleavage Assay to Screen the Proteolytic Activity of Proteases

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2025

This video demonstrates an assay to screen for the proteolytic activity of proteases using fluorogenic peptides. The protease recognizes its cleavage site on the peptide, cleaving it and separating the quencher from the fluorophore, enabling its fluorescence emission. The fluorescence signal is detected and analyzed to check for the cleavage efficiency of different peptide variants.

A Colorimetric Assay that Specifically Measures Granzyme B Proteolytic Activity: Hydrolysis of Boc-Ala-Ala-Asp-S-Bzl

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Cited by 12 •

2014

We describe a simple, quantitative colorimetric assay that specifically measures the proteolytic activity of human, mouse or rat Granzyme B (GzmB). This protocol can be easily adapted for determining protease activity of other granule serine proteases by the hydrolysis of other synthetic peptide substrates with an appropriate recognition sequence.

Proteolytically Degraded Alginate Hydrogels and Hydrophobic Microbioreactors for Porcine Oocyte Encapsulation

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Cited by 10 •

2020

Presented here are two protocols for the encapsulation of porcine oocytes in 3D culture conditions. In the first, cumulus-oocyte complexes (COCs) are encapsulated in fibrin-alginate beads. In the second, they are enclosed with fluorinated ethylene propylene powder particles (microbioreactors). Both systems ensure optimal conditions to maintain their 3D organization.

Research

JoVE Journal - Environment
Free Sample

Evaluating the Impact of Hydraulic Fracturing on Streams using Microbial Molecular Signatures

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Cited by 1 •

2021

Here, we present a protocol to investigate the impacts of hydraulic fracturing on nearby streams by analyzing their water and sediment microbial communities.

A Method for Ovarian Follicle Encapsulation and Culture in a Proteolytically Degradable 3 Dimensional System

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Cited by 80 •

2011

A new method for ovarian follicle encapsulation in a 3D fibrin-alginate interpenetrating network is described. This system combines structural support with proteolytic degradation to support the development of immature follicles to produce mature oocytes. This method may be applied to culture cell aggregates to maintain cell-cell contacts without limiting expansion.

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