Figure S1: Reaction mechanisms of NRs lacking CTDs alter channel kinetics. Kinetic models optimized by fitting 5C2O open state models to entire records.

Slides:



Advertisements
Similar presentations
P449. p450 Figure 15-1 p451 Figure 15-2 p453 Figure 15-2a p453.
Advertisements

Figure 1: The model for crosstalk between the Gαi and Gαq pathways depends on both differential specificity and activity for Gαi, Gαq and Gβγ interactions.
Ch 14- Chemical Kinetics -The area of chemistry concerned with the speeds, or rates, of reactions.
Figure 3. Profiles of chemokine network in adipose tissues between lean and obese postmenopausal women. (A) Expression levels of chemokine ligands and.
Probing α-310 Transitions in a Voltage-Sensing S4 Helix
Blue 10 WT OX OX21 BZS1-OX A B Blue Fluence level (μmol/m2/s)
Probing α-310 Transitions in a Voltage-Sensing S4 Helix
Volume 99, Issue 9, Pages (November 2010)
Kinetic Hysteresis in Collagen Folding
Rounding and estimating: How many significant figures?
Rounding and estimating: Upper and Lower Bounds (sig figs)
Coherency Data Also known as Discontinuity or Variance
Volume 13, Issue 1, Pages (January 2016)
Volume 27, Issue 7, Pages (April 2017)
Mechanotransmission and Mechanosensing of Human alpha-Actinin 1
Pre-constancy Vision in Infants
Structural Effects of an LQT-3 Mutation on Heart Na+ Channel Gating
Cell-Autonomous Excitation of Midbrain Dopamine Neurons by Endocannabinoid- Dependent Lipid Signaling  Stephanie C. Gantz, Bruce P. Bean  Neuron  Volume.
Error Intervals: Rounded to significant figures
Volume 15, Issue 2, Pages (August 2008)
Jing Han, Kristyna Pluhackova, Tsjerk A. Wassenaar, Rainer A. Böckmann 
Shohei Fujita, Takuya Matsuo, Masahiro Ishiura, Masahide Kikkawa 
Volume 24, Issue 12, Pages (December 2016)
Complex Energy Landscape of a Giant Repeat Protein
Brv1 Is Required for Drosophila Larvae to Sense Gentle Touch
Thomas Voets, Erwin Neher, Tobias Moser  Neuron 
Volume 111, Issue 2, Pages (July 2016)
Single Units in the Medial Prefrontal Cortex with Anxiety-Related Firing Patterns Are Preferentially Influenced by Ventral Hippocampal Activity  Avishek.
Transsynaptic Control of Presynaptic Ca2+ Influx Achieves Homeostatic Potentiation of Neurotransmitter Release  Martin Müller, Graeme W. Davis  Current.
Felix Felmy, Erwin Neher, Ralf Schneggenburger  Neuron 
Volume 11, Issue 10, Pages (October 2004)
Figure 11-1.
Volume 26, Issue 8, Pages (April 2016)
Practice Rounding to Significant Figures © T Madas.
Volume 14, Issue 1, Pages (January 2016)
Volume 25, Issue 3, Pages (February 2015)
Volume 89, Issue 6, Pages (March 2016)
Brian Chu, Marten Postma, Roger C. Hardie  Biophysical Journal 
Stationary Gating of GluN1/GluN2B Receptors in Intact Membrane Patches
Kinetic Hysteresis in Collagen Folding
Volume 94, Issue 4, Pages e4 (May 2017)
Figure Overview.
Unitary Properties of AMPA Receptors with Reduced Desensitization
Volume 10, Issue 1, Pages (January 2017)
Cholinergic Homeostatic Synaptic Plasticity Drives the Progression of Aβ-Induced Changes in Neural Activity  Eu-Teum Hahm, Raghavendra Y. Nagaraja, Girma.
Clustering of Cyclic-Nucleotide-Gated Channels in Olfactory Cilia
Fernando D. Marengo, Jonathan R. Monck  Biophysical Journal 
Transsynaptic Control of Presynaptic Ca2+ Influx Achieves Homeostatic Potentiation of Neurotransmitter Release  Martin Müller, Graeme W. Davis  Current.
Effects of Temperature on Heteromeric Kv11.1a/1b and Kv11.3 Channels
Fredrik Elinder, Michael Madeja, Hugo Zeberg, Peter Århem 
Stephanie Rudolph, Linda Overstreet-Wadiche, Jacques I. Wadiche  Neuron 
Volume 24, Issue 10, Pages (October 2016)
R. Stehle, M. Krüger, G. Pfitzer  Biophysical Journal 
Volume 93, Issue 12, Pages (December 2007)
Elementary Functional Properties of Single HCN2 Channels
Chiral Cilia Orientation in the Left-Right Organizer
Activity flow of PDGFR signaling pathways.
Mitochondrial enzymatic activities and root tip respiration in wild type (WT) and mab1-1. Mitochondrial enzymatic activities and root tip respiration in.
Kinetics of P2X7 Receptor-Operated Single Channels Currents
Graphical Analysis of Motion
Humans Can Continuously Optimize Energetic Cost during Walking
Rounding and estimating: Upper and Lower Bounds (sig figs)
Volume 11, Pages (January 2019)
Volume 49, Issue 3, Pages (February 2006)
Volume 27, Issue 7, Pages (April 2017)
Diana L Pettit, Samuel S.-H Wang, Kyle R Gee, George J Augustine 
Volume 65, Issue 4, Pages (February 2010)
Use Dependence of Heat Sensitivity of Vanilloid Receptor TRPV2
Volume 113, Issue 2, Pages (July 2017)
Role of the DELSEED Loop in Torque Transmission of F1-ATPase
Presentation transcript:

Figure S1: Reaction mechanisms of NRs lacking CTDs alter channel kinetics. Kinetic models optimized by fitting 5C2O open state models to entire records obtained from 2A and 2B receptors. (p > 0.05). Rate constants (s -1 ) are given as rounded averages of means for each condition. * indicates values that are significantly different (lower in red and higher in blue) than the respective wild-type channels (p < 0.05).

Table S1: Kinetic analyses of open intervals. Time constants (  ) and areas (a) of individual open components estimated by fitting entire files to a kinetic model containing 5C4) states. Values in blue are significantly higher than WT (*, p < 0.05) Condition τ Ef (ms) a Ef (%) τ EL (ms) a EL (%) τ EM (ms) a EM (%) τ EH (ms) a EH (%) N1/2A0.14 ± ± ± ± 55.9 ± ± ± ± 3 N1 Δ /2A0.13 ± ± 13.2 ± ± 75.6 ± ± 613 ± 112 ± 5 N1/2A Δ 0.13 ± ± 14.2 ± 0.4*19 ± ± 0.8*57 ± 433 ± 4*17 ± 8 N1 Δ /2A Δ 0.17 ± ± 13.1 ± ± ± 0.8*39 ± 427 ± 5*22 ± 10 N1/2B0.19 ± ± 22.6 ± ± 96.4 ± ± ± ± 8 N1 Δ /2B0.13 ± ± 12.4 ± ± 55.7 ± ± 410 ± 117 ± 6 N1/2B Δ 0.16 ± ± 11.9 ± ± 28.0 ± ± 318 ± 2*21 ± 6 N1 Δ /2B Δ 0.20 ± ± 12.5 ± ± 29.9 ± 0.6*42 ± 224 ± 1*25 ± 3

Condition τ E1 (ms) a E1 (%) τ E2 (ms) a E2 (%) τ E3 (ms) a E3 (%) τ E4 (ms) a E4 (%) τ E5 (ms) a E5 (%) N1/2A0.14 ± ± 31.4 ± ± 24.4 ± ± 322 ± 41.5 ± 0.33,000 ± ± 0.01 N1 Δ /2A0.14 ± ± 31.5 ± ± 3*5.1 ± ± 1*47 ± 6*1.6 ± 0.52,900 ± ± 0.02 N1/2A Δ 0.15 ± ± 42.0 ± ± 4*7 ± 111 ± 2*900 ± 400*0.5 ± 0.1*8,000 ± 1,000*0.7 ± 0.1* N1 Δ /2A Δ 0.22 ± 0.03*39 ± 32.9 ± 0.5*41 ± 2*12 ± 1*17 ± 2*600 ± 200*1.1 ± 0.38,600 ± 800*1.3 ± 0.1* N1/2B0.17 ± ± 52.7 ± ± 512 ± 341 ± 334 ± 46 ± 21,130 ± ± 0.2 N1 Δ /2B0.15 ± ± 32.0 ± ± 29.2 ± ± 739 ± 66 ± 11,380 ± 40*0.5 ± 0.1 N1/2B Δ 0.14 ± 0.01*33 ± 32.9 ± ± 318 ± 235 ± 3230 ± 80*7 ± 12,300 ± 500*2.9 ± 0.5* N1 Δ /2B Δ 0.14 ± 0.01*38 ± 32.7 ± ± 319 ± 330 ± 5300 ± 100*6 ± 13,100 ± 500*2.2 ± 0.5* Table S2: Kinetic analyses of closed intervals Time constants (  ) and areas (a) of individual closed components (E1-E5) estimated by fitting entire files to a kinetic model containing 5C4O states. *, values that are significantly different relative to WT (p < 0.05), highlighted in red (lower) or blue (higher)