Department of Analytical Chemistry and Food Technology, Faculty of Chemical Science and Technology, University of Castilla-La Mancha, Ciudad Real, 13071, Spain.
Regional Institute for Applied Chemistry Research (IRICA), Ciudad Real, 13071, Spain.
Anal Bioanal Chem. 2024 Jul;416(18):4173-4191. doi: 10.1007/s00216-024-05344-3. Epub 2024 May 25.
A reliable nanotechnological sensing strategy, based on an S,N-co-doped graphene quantum dot (GQD) platform, has been developed to distinctly detect two key variants of vitamin D, specifically the free (VD) and the nanoencapsulated form (VDMs). For this purpose, food-grade vitamin D micelles were self-assembled using a low-energy procedure (droplet size: 49.6 nm, polydispersity index: 0.34, ζ-potential: -33 mV, encapsulation efficiency: 90 %) with an innovative surfactant mixture (Tween 60 and quillaja saponin). Herein, four fluorescent nanoprobes were also synthesized and thoroughly characterized: S,N-co-doped GQDs, α-cyclodextrin-GQDs, β-cyclodextrin-GQDs, and γ-cyclodextrin-GQDs. The goal was to achieve a selective dual sensing strategy for free VD and VDMs by exploiting their distinctive quenching behaviors. Thus, the four nanosensors allowed the individual sensing of both targets to be performed (except α-CD-GQD for VDMs), but S,N-GQDs were finally selected due to selectivity and sensitivity (quantum yield, QY= 0.76) criteria. This choice led to a photoinduced electron transfer (PET) mechanism associated with static quenching, where differentiation was evidenced through a displayed 13-nm hypsochromic (blue) shift when interacting with VDMs. The reliability of this dual approach was demonstrated through an extensive evaluation of analytical performance characteristics. The feasibility and accuracy were proven in commercial food preparations and nutritional supplements containing declared nanoencapsulated and raw VD, whose results were validated by a paired Student's t-test comparison with a UV-Vis method. To the best of our knowledge, this represents the first non-destructive analytical approach addressing the groundbreaking foodomic trend to distinctly detect different bioactive forms of vitamin D, while also preserving their native nanostructures as a chemical challenge, thus providing reliable information about their final stability and bioavailability.
一种基于 S,N 共掺杂石墨烯量子点(GQD)平台的可靠纳米传感策略已被开发出来,用于明显检测两种关键形式的维生素 D,即游离(VD)和纳米封装形式(VDMs)。为此,使用低能量程序(液滴尺寸:49.6nm,多分散指数:0.34,ζ-电位:-33mV,包封效率:90%)自组装食品级维生素 D 胶束,使用创新的表面活性剂混合物(吐温 60 和 quillaja 皂苷)。在此,还合成并彻底表征了四种荧光纳米探针:S,N 共掺杂 GQD、α-环糊精-GQD、β-环糊精-GQD 和 γ-环糊精-GQD。目标是通过利用它们独特的猝灭行为来实现游离 VD 和 VDMs 的选择性双传感策略。因此,四种纳米传感器允许单独检测这两个目标(除了α-CD-GQD 用于 VDMs),但最终由于选择性和灵敏度(量子产率,QY=0.76)标准选择了 S,N-GQDs。这种选择导致了与光诱导电子转移(PET)机制相关的静态猝灭,其中通过与 VDMs 相互作用时显示出 13nm 的红移(蓝移)来证明差异。通过广泛评估分析性能特征来证明这种双方法的可靠性。在含有申报的纳米封装和原始 VD 的商业食品制剂和营养补充剂中证明了可行性和准确性,并通过与 UV-Vis 方法的配对学生 t 检验比较验证了结果。据我们所知,这是第一个非破坏性分析方法,用于明确检测不同形式的生物活性维生素 D,同时保持其作为化学挑战的天然纳米结构,从而提供有关其最终稳定性和生物利用度的可靠信息。