Institute of Biomedical Engineering, University of Toronto, Toronto, ON M5S 3G9, Canada.
Translational Biology & Engineering Program, Ted Rogers Centre for Heart Research, Toronto, ON M5G 1M1, Canada.
Int J Mol Sci. 2023 May 31;24(11):9532. doi: 10.3390/ijms24119532.
Magnetic resonance imaging (MRI) contrast agents, in contrast to the plethora of fluorescent agents available to target disease biomarkers or exogenous implants, have remained predominantly non-specific. That is, they do not preferentially accumulate in specific locations in vivo because doing so necessitates longer contrast retention, which is contraindicated for current gadolinium (Gd) agents. This double-edge sword implies that Gd agents can offer either rapid elimination (but lack specificity) or targeted accumulation (but with toxicity risks). For this reason, MRI contrast agent innovation has been severely constrained. Gd-free alternatives based on manganese (Mn) chelates have been largely ineffective, as they are inherently unstable. In this study, we present a Mn(III) porphyrin (MnP) platform for bioconjugation, offering the highest stability and chemical versatility compared to any other T contrast agent. We exploit the inherent metal stability conferred by porphyrins and the absence of pendant bases (found in Gd or Mn chelates) that limit versatile functionalization. As proof-of-principle, we demonstrate labeling of human serum albumin, a model protein, and collagen hydrogels for applications in in-vivo targeted imaging and material tracking, respectively. In-vitro and in-vivo results confirm unprecedented metal stability, ease of functionalization, and high T relaxivity. This new platform opens the door to ex-vivo validation by fluorescent imaging and multipurpose molecular imaging in vivo.
磁共振成像(MRI)对比剂与大量可靶向疾病生物标志物或外源性植入物的荧光剂不同,主要是非特异性的。也就是说,它们不会优先在体内特定部位积聚,因为这样做需要更长的对比保留时间,而这对当前的钆(Gd)剂是禁忌的。这种双刃剑意味着 Gd 剂可以提供快速消除(但缺乏特异性)或靶向积累(但存在毒性风险)。出于这个原因,MRI 对比剂的创新受到了严重限制。基于锰(Mn)螯合物的无 Gd 替代品在很大程度上是无效的,因为它们本质上不稳定。在这项研究中,我们提出了一种 Mn(III)卟啉(MnP)用于生物偶联的平台,与任何其他 T1 对比剂相比,它具有最高的稳定性和化学多功能性。我们利用卟啉赋予的固有金属稳定性和不存在限制多功能化的悬垂碱基(存在于 Gd 或 Mn 螯合物中)。作为原理验证,我们展示了人血清白蛋白(一种模型蛋白)和胶原蛋白水凝胶的标记,分别用于体内靶向成像和材料跟踪的应用。体外和体内结果证实了前所未有的金属稳定性、易于功能化和高 T1 弛豫率。这个新平台为通过荧光成像和体内多用途分子成像进行离体验证打开了大门。