Bouaziz Zaineb, Djebbi Mohamed Amine, Soussan Laurence, Janot Jean-Marc, Amara Abdesslem Ben Haj, Balme Sebastien
Institut Européen des Membranes, UMR5635 UM ENSM CNRS, Place Eugène Bataillon, 34095 Montpellier Cedex 5, France; Laboratoire de Physique des Matériaux Lamellaires et Nanomatériaux Hybrides, Faculté des Sciences de Bizerte, Université de Carthage, 7021 Zarzouna, Tunisia.
Laboratoire de Physique des Matériaux Lamellaires et Nanomatériaux Hybrides, Faculté des Sciences de Bizerte, Université de Carthage, 7021 Zarzouna, Tunisia; Institut des Sciences Analytiques UMR CNRS 5280, Université Claude Bernard-Lyon 1, 5 Rue de la Doua, 69100 Villeurbanne, France; Institut National de Recherche en Sciences et Technologies pour l'Environnement et l'Agriculture, Université Claude Bernard-Lyon 1, 5 Rue de la Doua, 69100 Villeurbanne, France.
Mater Sci Eng C Mater Biol Appl. 2017 Jul 1;76:673-683. doi: 10.1016/j.msec.2017.03.143. Epub 2017 Mar 19.
Layered double hydroxide (LDH) nanohybrid intercalated biomolecules, including oligonecluotides, genes and peptides/proteins, have attracted particular attention since they exhibit improved safety and effectiveness as successful delivery biosystems. The current study specifically investigated the adsorption of nisin peptide and precisely the control of the release of the payload. Adsorption occurred from peptide solution in contact with zinc-aluminum LDH at room temperature, looking out over the influence of the Zn/Al ratio, the anion exchange capacity, the nature of the intercalated anion, the host matrix, and the host morphology. Higher adsorption was obtained, around 80% of the loaded nisin and successful intercalation was verified by X-ray diffraction. The in-vitro release tests of the nisin from the biohybrid formulation was held over 25days in PBS medium (0.01M, pH7,4) and showed that no burst release phenomenon occurred at the beginning step, in addition, a sustained-time release of nisin was obtained compared with the free nisin. Therefore, these preliminary results are encouraging for the development of bioprotectors based on nisin intercalated LDH and being implemented in the food and medical industries.
层状双氢氧化物(LDH)纳米杂化物插层生物分子,包括寡核苷酸、基因和肽/蛋白质,因其作为成功的递送生物系统表现出更高的安全性和有效性而备受关注。当前研究特别考察了乳链菌肽的吸附情况以及对负载物释放的精确控制。在室温下,乳链菌肽溶液与锌铝LDH接触发生吸附,同时考察了锌铝比、阴离子交换容量、插层阴离子性质、主体基质和主体形态的影响。获得了较高的吸附量,约80%的负载乳链菌肽被吸附,并且通过X射线衍射验证了成功插层。在PBS培养基(0.01M,pH7.4)中对该生物杂化制剂中的乳链菌肽进行了25天的体外释放测试,结果表明在起始阶段未出现突释现象,此外,与游离乳链菌肽相比,实现了乳链菌肽的持续释放。因此,这些初步结果对于基于插层有乳链菌肽的LDH开发生物保护剂并应用于食品和医疗行业而言是令人鼓舞的。