Cesari Andrea, Recchimurzo Alessandra, Fabiano Angela, Balzano Federica, Rossi Nicolò, Migone Chiara, Uccello-Barretta Gloria, Zambito Ylenia, Piras Anna Maria
Department of Chemistry and Industrial Chemistry, University of Pisa, via G. Moruzzi 13, 56126 Pisa, Italy.
Department of Pharmacy, University of Pisa, via Bonanno Pisano 6, 56126 Pisa, Italy.
Polymers (Basel). 2020 Feb 19;12(2):474. doi: 10.3390/polym12020474.
Cyclodextrin-grafted polymers are attractive biomaterials that could bring together the host-guest complexing capability of pristine cyclodextrin and the pharmaceutical features of the polymeric backbone. The present paper is aimed at characterizing the potential application of ammonium-chitosan grafted with 2-methyl-β-cyclodextrin (N-rCh-MCD) as the functional macromolecular complexing agent for the oral administration of the neuropeptide dalargin (DAL). Specific NMR characterization procedures, along with UV and fluorescence techniques, as well as biological in vitro assessments have been performed. The results indicate that N-rCh-MCD forms water-soluble complexes with DAL, with a prevalent involvement of Tyr or Phe over Leu and Ala residues. The association constant of DAL with the polymeric derivative is one order of magnitude higher than that with the pristine cyclodextrin (K: 2600 M and 120 M, respectively). Additionally, N-rCh-MCD shields DAL from enzymatic degradation in gastrointestinal in vitro models with a three-fold time delay, suggesting a future pharmaceutical exploitation of the polymeric derivative. Therefore, the greater affinity of N-rCh-MCD for DAL and its protective effect against enzymatic hydrolysis can be attributed to the synergistic cooperation between cyclodextrin and the polymer, which is realized only when the former is covalently linked to the latter.
环糊精接枝聚合物是一种有吸引力的生物材料,它可以将原始环糊精的主客体络合能力与聚合物主链的药物特性结合在一起。本文旨在表征接枝有2-甲基-β-环糊精的铵化壳聚糖(N-rCh-MCD)作为神经肽达朗精(DAL)口服给药的功能性大分子络合剂的潜在应用。已进行了特定的核磁共振表征程序,以及紫外和荧光技术,还有体外生物学评估。结果表明,N-rCh-MCD与DAL形成水溶性络合物,其中Tyr或Phe比Leu和Ala残基更易参与络合。DAL与聚合物衍生物的缔合常数比与原始环糊精的缔合常数高一个数量级(K分别为2600 M和120 M)。此外,在体外胃肠道模型中,N-rCh-MCD使DAL免受酶降解的时间延迟了三倍,这表明该聚合物衍生物未来在制药领域有应用前景。因此,N-rCh-MCD对DAL的更大亲和力及其对酶水解的保护作用可归因于环糊精与聚合物之间的协同合作,这种协同合作只有在前者与后者共价连接时才会实现。