Istituto Italiano di Tecnologia, Smart Bio-Interfaces, Viale Rinaldo Piaggio 34, Pontedera, Pisa, 56025, Italy.
Department of Chemistry, Materials and Chemical Engineering "Giulio Natta", Politecnico di Milano, Piazza Leonardo da Vinci 32, Milan, 20133, Italy.
Macromol Biosci. 2021 Sep;21(9):e2100181. doi: 10.1002/mabi.202100181. Epub 2021 Jul 2.
Tetrapyrroles are the basis of essential physiological functions in most living organisms. These compounds represent the basic scaffold of porphyrins, chlorophylls, and bacteriochlorophylls, among others. Chlorophyll derivatives, obtained by the natural or artificial degradation of chlorophylls, present unique properties, holding great potential in the scientific and medical fields. Indeed, they can act as cancer-preventing agents, antimutagens, apoptosis inducers, efficient antioxidants, as well as antimicrobial and immunomodulatory molecules. Moreover, thanks to their peculiar optical properties, they can be exploited as photosensitizers for photodynamic therapy and as vision enhancers. Most of these molecules, however, are highly hydrophobic and poorly soluble in biological fluids, and may display undesired toxicity due to accumulation in healthy tissues. The advent of nanomedicine has prompted the development of nanoparticles acting as carriers for chlorophyll derivatives, facilitating their targeted administration with demonstrated applicability in diagnosis and therapy. In this review, the chemical and physical properties of chlorophyll derivatives that justify their usage in the biomedical field, with particular regard to light-activated dynamics are described. Their role as antioxidants and photoactive agents are discussed, introducing the most recent nanomedical applications and focusing on inorganic and organic nanocarriers exploited in vitro and in vivo.
四吡咯类化合物是大多数生物体内基本生理功能的基础。这些化合物构成了卟啉、叶绿素和细菌叶绿素等的基本支架。叶绿素衍生物是通过叶绿素的自然或人工降解获得的,具有独特的性质,在科学和医学领域具有巨大的潜力。事实上,它们可以作为抗癌剂、抗诱变剂、凋亡诱导剂、高效抗氧化剂以及抗菌和免疫调节分子。此外,由于其独特的光学特性,它们可以用作光动力治疗的光敏剂和视觉增强剂。然而,这些分子中的大多数具有很强的疏水性,在生物流体中的溶解度很差,并且由于在健康组织中的积累,可能会表现出不良的毒性。纳米医学的出现促使了作为叶绿素衍生物载体的纳米粒子的发展,促进了它们的靶向给药,在诊断和治疗方面具有明显的应用。在这篇综述中,描述了叶绿素衍生物在生物医学领域中使用的化学和物理性质,特别是与光激活动力学有关的性质。讨论了它们作为抗氧化剂和光活性剂的作用,介绍了最新的纳米医学应用,并重点介绍了在体外和体内使用的无机和有机纳米载体。