化卡尼衍生物作为可视化卡尼运输和代谢的工具
Richard S Edwards1, Ella-May Hards1, Sofia N Dos Santos1
1School of Biomedical Engineering & Imaging Sciences, King's College London, London, SE1 7EH, UK.
Advanced science (Weinheim, Baden-Wurttemberg, Germany)
|November 7, 2025
概括
化卡尼丁衍生物,如甲基卡尼丁 (FMC),可以精确测量卡尼丁代谢. 放射性标记的[18F]FMC允许体内成像卡尼利用,特别是在非小细胞肺癌.
科学领域:
- 生物化学 生物化学
- 医疗成像医学成像
- 代谢障碍 代谢障碍 代谢障碍
背景情况:
- 卡尼丁通过β-氧化促进脂肪酸运输以获得细胞能量.
- 失调的肉丁代谢与心脏病,胰岛素抵抗和癌症等疾病有关.
研究的目的:
- 开发和合成化卡尼衍生物,以评估卡尼代谢.
- 评价[18F]甲基卡尼丁 ([18F]FMC) 对量化分析和卡尼丁运输和代谢体内成像的有用性.
主要方法:
- 甲基卡尼丁 (FMC) 的设计和合成.
- 用-18对FMC进行放射性标记,以创建[18F]FMC.
- 在细胞模型和活体对象中量化测量卡尼丁的运输和代谢.
- 在非小细胞肺癌异种移植模型中使用[18F]FMC进行正子发射断层扫描 (PET) 成像.
主要成果:
- 成功合成了FMC及其放射性标记形式[18F]FMC.
- [18F]FMC在各种模型中有效量化了卡尼丁的运输和代谢.
- 使用[18F]FMC进行的PET成像可视化了非小细胞肺癌异体移植患者的卡尼丁利用率的增加.
结论:
- 包括[18F]FMC在内的化卡尼丁衍生物为研究卡尼丁代谢提供了宝贵的工具.
- [18F]FMC PET成像可以在癌症等疾病中非侵入性地检测异常的卡尼丁利用.
更多相关视频
08:42Using Multi-fluorinated Bile Acids and In Vivo Magnetic Resonance Imaging to Measure Bile Acid Transport
Published on: November 27, 2016
11.6K
07:12Author Spotlight: Analysis of Fluorescent-Stained Lipid Droplets with 3D Reconstruction for Hepatic Steatosis Assessment
Published on: June 2, 2023
8.4K
相关概念视频
Electron Carriers
Electron carriers can be thought of as electron shuttles. These compounds can easily accept electrons (i.e., be reduced) or lose them (i.e., be oxidized). They play an essential role in energy production because cellular respiration is contingent on the flow of electrons.
Over the many stages of cellular respiration, glucose breaks down into carbon dioxide and water. Electron carriers pick up electrons lost by glucose in these reactions, temporarily storing and releasing them into the electron...
Over the many stages of cellular respiration, glucose breaks down into carbon dioxide and water. Electron carriers pick up electrons lost by glucose in these reactions, temporarily storing and releasing them into the electron...
Gas Exchange and Transport
Gas exchange, the intake of molecular oxygen (O2) from the environment and the outflow of carbon dioxide (CO2) into the environment, is necessary for cellular function. Gas exchange during respiration occurs largely via the movement of gas molecules along pressure gradients. Gas travels from areas of higher partial pressure to areas of lower partial pressure. In mammals, gas exchange occurs in the alveoli of the lungs, which are adjacent to capillaries and share a membrane with them.
The Calvin Benson Cycle
Ribulose 1,5- bisphosphate carboxylase/oxygenase (RuBisCo) is a critical enzyme that catalyzes carbon dioxide assimilation during photosynthesis. However, it is an inefficient enzyme, having an extremely slow catalytic rate. A typical enzyme can process about a thousand molecules per second; however, RuBisCo fixes only around three-carbon dioxides per second. Photosynthetic cells compensate for this slow rate by synthesizing very high amounts of RuBisCo, making it the most abundant single...
Role of Reduced Coenzymes NADH and FADH₂
The energy released from the breakdown of the chemical bonds within nutrients can be stored either through the reduction of electron carriers or in the bonds of adenosine triphosphate (ATP). In living systems, a small class of compounds functions as mobile electron carriers, molecules that bind to and shuttle high-energy electrons between compounds in pathways. The principal electron carriers that will be considered originate from the B vitamin group and are derivatives of nucleotides; they are...
Drug Biotransformation: Overview
Pharmaceutical substances known as xenobiotics are predominantly lipophilic and nonionized. This enables them to permeate lipid bilayers, such as cell membranes, and interact with intracellular target receptors. Lipophilic drugs have an advantage in crossing biological barriers and reaching their intended sites of action. However, lipophilic drugs often have a restricted capacity for renal expulsion or elimination from the body. When these drugs enter the kidneys and undergo glomerular...
Active Transport
Active transport is a critical biological process that allows cells to move solutes against an electrochemical gradient. This process requires direct energy input and is characterized by its selectivity, saturability, and susceptibility to competitive inhibition.
Primary active transporters, like Na+, K+ and -ATPase, directly utilize ATP to move ions across the membrane. These transporters play significant roles in various physiological processes. For instance, Na+, K+ and -ATPase maintain...
Primary active transporters, like Na+, K+ and -ATPase, directly utilize ATP to move ions across the membrane. These transporters play significant roles in various physiological processes. For instance, Na+, K+ and -ATPase maintain...
