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Shigematsu, T.

Publications and source records attributed to Shigematsu, T..

2 recordsLinked to original sources

Expanding and Decoding the Chemistry of Phospholipid Headgroup in Eukaryotes

Cellular membranes have diverse phospholipids, chemical differences in whose headgroups impact many biological processes. Phosphatidylcholine is an essential phospholipid for human health, but not universally required for life. The evolutionary mechanisms underlying phospholipid preferences remain poorly understood, due to the difficulty of investigating metabolite structure-activity relationships in a cellular context. Here, we developed a generalizable metabolic-rewiring method to manipulate phospholipid headgroups together and their biological effects. This approach utilizes synthetic media to hijack evolutionarily conserved phosphatidylcholine biosynthesis, leveraging xenobiotics as principal precursors for scalable headgroup transformations. By identifying over 100 artificial headgroups, we expanded the chemical diversity of xenobiotic phospholipids. Unexpectedly, we discovered that subtle headgroup alterations produced distinct mammalian cellular activities. We demonstrated that chemical headgroup modifications differentially elicited structure-dependent effects on phospholipid-protein interactions, calcium dynamics, transcriptomic profiles, and stem cell differentiation. Notably, cross-species comparison revealed that human and yeast cells have different headgroup preferences critical for cell life and death. As proof-of-concept, interactome analysis identified headgroup-sensitive human microproteins vital for mitochondrial respiration, but non-conserved in yeast. These results exemplify the evolutionary diversity of key phospholipid-protein interactions, illustrating why humans depend on phosphatidylcholine. Overall, our findings establish a programmable platform for elucidating and engineering phospholipid-driven cellular functions.

cell biology↗

Allometric multi-scaling of weight-for-height relation in children and adolescents: Revisiting the theoretical basis of body mass index of thinness and obesity assessment

The body mass index (BMI), defined as weight in kilograms divided by height in meters squared, has been widely used to assess thinness and obesity in all age groups, including children and adolescents. However, the validity and utility of BMI as a reliable measure of nutritional health have been questioned. This study discusses the mathematical conditions that support the validity of BMI based on population statistics. Here, we propose a condition defined as allometric uni-scaling to ensure the validity of BMI as an objective height-adjusted measure. Any given centile curve, including the median curve, in a weight-for-height distribution should be approximated using power-law functions with the same scaling exponent. In contrast, when the scaling exponent varies depending on the position of the centile curve, it is called allometric multi-scaling. By introducing a method for testing these scaling properties using quantile regression, we analyzed a large-scale Japanese database that included 7,863,520 children aged 5-17 years. We demonstrated the remarkable multi-scaling properties at ages 5-13 years for males and 5-11 years for females, and the convergence to uni-scaling with a scaling exponent close to 2 as they approached 17 years of age for both sexes. We confirmed that conventional BMI is appropriate as an objective height-adjusted mass measure at least 17 years of age, close to adulthood, for both males and females. However, the validity of BMI could not be confirmed in younger age groups. Our findings indicate that the growth of childrens weight-for-height relation is much more complex than previously assumed. Therefore, a single BMI-type formula cannot be used to assess thinness and obesity in children and adolescents.

biophysics↗