Fe-MOF-based fluorescent and colorimetric dual-readout nanoprobe for the sensitive detection of α-lipomycin

Xianfeng Wang1, Genchang Chen1, Gongle Shen1

  • 1Wuxi School of Medicine, Jiangnan University, Wuxi, 214122, P. R. China.

Insights

A new dual-mode sensor using Fe-MOF nanorods can detect the microbial metabolite α-lipomycin, a key factor in salt-sensitive hypertension. This offers a promising tool for early detection and understanding of the disease.

Area of Science:

  • Materials Science
  • Analytical Chemistry
  • Biomedical Engineering

Background:

  • Salt-sensitive hypertension is a major health issue with unclear causes.
  • The microbial metabolite α-lipomycin is implicated in vascular dysfunction and hypertension.
  • Early detection of α-lipomycin is crucial for managing salt-sensitive hypertension.

Purpose of the Study:

  • To develop a sensitive and selective method for detecting α-lipomycin.
  • To utilize Fe-MOF nanorods as a dual-mode (fluorescent and colorimetric) nanoprobe.
  • To validate the sensor's performance in biological samples and assess its clinical relevance.

Main Methods:

  • Synthesis of Fe-MOF nanorods using TCPP ligand and Fe(III) metal center via solvothermal method.
  • Development of a dual-mode detection strategy based on fluorescence emission and color change.
  • Characterization of sensor performance including linear response range, detection limits, selectivity, and repeatability.

Main Results:

  • Fe-MOF nanorods exhibited dual-mode detection of α-lipomycin with fluorescence at 645 nm and a brown chromogenic appearance.
  • Ultratlow detection limits were achieved: 23.83 nM (fluorescence) and 409.80 nM (colorimetry).
  • The sensor demonstrated high selectivity, repeatability, and acceptable recovery rates in tap water and clinical serum samples, showing elevated α-lipomycin in hypertensive patients.

Conclusions:

  • Fe-MOF nanorods provide a dual-mode optical platform for selective and reliable α-lipomycin detection.
  • The developed sensor overcomes limitations of conventional methods like mass spectrometry.
  • This approach holds promise for early pathogenesis detection, therapeutic monitoring, and research in salt-sensitive hypertension.