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Updated: May 31, 2026

Specificity Analysis of Protein Lysine Methyltransferases Using SPOT Peptide Arrays
Published on: November 29, 2014
Rapid Phenotypic Screening of Lysine-Degrading Probiotics via FTIR Spectroscopy: Toward Precision Therapy for
Yiqing Zhang1,2,3, Mingyu Wu1,3, Xueling Li4
1College of Pharmacy, Binzhou Medical University, Yantai 264003, China.
Abstract:
Hyperlysinemia is a life-threatening metabolic disorder that requires the continuous clearance of lysine. Engineered probiotics capable of degrading lysine in the gut represent a promising therapeutic strategy. However, the introduction of heterologous metabolic pathways can impose a substantial fitness burden on the bacterial host, potentially compromising the therapeutic efficacy. Current screening methods fail to adequately assess this pathway-induced stress. Therefore, optimizing methods to evaluate bacterial fitness after pathway modification is essential for developing effective bacterial therapies. Here, we present a label-free phenotypic screening approach using Fourier transform infrared (FTIR) spectroscopy to evaluate the physiological burden imposed by two distinct lysine catabolism pathways engineered Escherichia coli Nissle 1917 (EcN): the plant-derived bifunctional enzyme LKR-SDR and the yeast-derived two-enzyme cascade Lys2-Lys5. Employing FTIR under lysine stress mimicking pathological concentrations, decoded pathway-specific stress signatures, and molecular resilience. Probiotics expressing LKR-SDR exhibited severe multisystem damage, including proteotoxicity, lipid peroxidation, and significant nucleic acid stress. In contrast, the Lys2-Lys5 strain demonstrated superior resilience, maintained structural integrity, and exhibited adaptive metabolic changes, primarily through lipid membrane remodeling. This study establishes FTIR spectroscopy as a rapid screening platform that identifies the Lys2-Lys5 pathway as optimal for probiotic therapies. By directly linking spectroscopic signatures to cellular fitness, FTIR spectroscopy accelerates the rational development of durable microbial therapeutics for inborn metabolic disorders.

