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Biology subjects

Baker, K. L.

Publications and source records attributed to Baker, K. L..

2 recordsLinked to original sources

Simultaneous ligand binding to intact and partially formed ATP binding sites in the hexameric termination factor Rho

Thermodynamic coupling between ligand binding sites affords macromolecular machines a means to coordinate processive function. Because these machines may be compositionally complex, quantifying and interpreting ligand binding events can be experimentally difficult. Biophysical methods that convolve binding events into a one-dimensional metric, which suffice for monomeric macromolecules that bind to a single ligand, are insufficient to adequately describe the complexity of binding to oligomeric systems. Confounding factors include structural heterogeneity that may invalidate basic assumptions used to interpret the measurements. In this communication, we use native mass spectrometry to measure ATP binding to a hexameric helicase, the E. coli termination factor Rho. Providing new insights into classical and more recent biochemical experiments, we observe and quantify ATP binding to hexameric and lower-order complexes. Moreover, we observe super-stoichiometric binding consistent with ATP binding to partially formed binding sites at the edges of the open washer structure. Such detailed insights are likely critical to understanding the mechanisms by which a broad range of macromolecular machines harness the free energy from ligand binding, hydrolysis, and exchange to coordinate their ligand-dependent functions.

biophysics↗

Behavioral discrimination and olfactory bulb encoding of odor plume intermittency

In order to survive, animals often need to navigate a complex odor landscape where odors can exist in airborne plumes. Several odor plume properties change with distance from the odor source, providing potential navigational cues to searching animals. Here we focus on odor intermittency, a temporal odor plume property that measures the fraction of time odor is present at a given point within the plume and decreases with increasing distance from the odor source. We sought to determine if mice are capable of using changes in intermittency to locate an odor source. To do so, we trained mice on an intermittency discrimination task. We establish that mice can discriminate odor plume samples of low and high intermittency and that the neural responses in the olfactory bulb can account for task performance and support intermittency encoding. Modulation of sniffing, a behavioral parameter that is highly dynamic during odor-guided navigation, affects both behavioral outcome on the intermittency discrimination task as well as neural representation of intermittency. Together, this work demonstrates that intermittency is an odor plume property that can inform olfactory search and more broadly supports the notion that mammalian odor-based navigation can be guided by temporal odor plume properties.

neuroscience↗