AI Article Synopsis

  • Plant proteins are increasingly favored over animal proteins because they are sustainable, nutritionally balanced, and have a low environmental impact, making them ideal for drug delivery and food applications.
  • Zein, derived from corn starch, is a cost-effective protein with self-assembly properties that enhance its use in encapsulating bioactive compounds like lutein, which has medicinal benefits but poor stability and absorption.
  • Recent research focuses on creating zein-loaded lutein nanosystems to improve lutein's stability and bioavailability, exploring their preparation methods, properties, and the beneficial interactions between zein and lutein to enhance performance in various applications.

Article Abstract

Plant proteins have gained significant attention over animal proteins due to their low carbon footprint, balanced nutrition, and high sustainability. These attributes make plant protein nanocarriers promising for applications in drug delivery, nutraceuticals, functional foods, and other areas. Zein, a major by-product of corn starch processing, is inexpensive and widely available. Its unique self-assembly characteristics have led to its extensive use in various food and drug systems. Zein's functional tunability allows for excellent performance in loading and transporting bioactive substances. Lutein offers numerous bioactive functions, such as antioxidant and vision protection, but suffers from poor chemical stability and low bioavailability. Nano-embedding technology can construct various zein-loaded lutein nanodelivery systems to address these issues. This review provides an overview of recent advances in the construction of zein-loaded lutein nanosystems. It discusses the fundamental properties of these systems; systematically introduces preparation techniques, structural characterization, and functional properties; and analyzes and predicts the target-controlled release and bioaccessibility of zein-loaded lutein nanosystems. The interactions and synergistic effects between Zein and lutein in the nanocomplexes are examined to elucidate the formation mechanism and conformational relationship of zein-lutein nanoparticles. The physical and chemical properties of Zein are closely related to the molecular structure. Zein and its modified products can encapsulate and protect lutein through various methods, creating more stable and efficient zein-loaded lutein nanosystems. Additionally, embedding lutein in Zein and its derivatives enhances lutein's digestive stability, solubility, antioxidant properties, and overall bioavailability.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11276201PMC
http://dx.doi.org/10.3390/foods13142304DOI Listing

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Article Synopsis
  • Plant proteins are increasingly favored over animal proteins because they are sustainable, nutritionally balanced, and have a low environmental impact, making them ideal for drug delivery and food applications.
  • Zein, derived from corn starch, is a cost-effective protein with self-assembly properties that enhance its use in encapsulating bioactive compounds like lutein, which has medicinal benefits but poor stability and absorption.
  • Recent research focuses on creating zein-loaded lutein nanosystems to improve lutein's stability and bioavailability, exploring their preparation methods, properties, and the beneficial interactions between zein and lutein to enhance performance in various applications.
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