List of Faculty Publications
Below is a list of Faculty publications imported from PubMed or manually added. By default, publications are sorted by year with titles displayed in ascending alphabetical order.
Shortcuts: Wühr, Martin | Wingreen, Ned | Wieschaus, Eric | Troyanskaya, Olga | Tilghman, Shirley | Storey, John | Singh, Mona | Shvartsman, Stanislav | Shaevitz, Joshua | Rabinowitz, Joshua | Murphy, Coleen | Levine, Michael {Levine, Michael S.} | Gregor, Thomas | Botstein, David | Bialek, William | Ayroles, Julien | Andolfatto, Peter | Akey, Joshua
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“The bacterial actin MreB rotates, and rotation depends on cell-wall assembly.”, Proc Natl Acad Sci U S A, vol. 108, no. 38, pp. 15822-7, 2011.
, “The structure and function of bacterial actin homologs.”, Cold Spring Harb Perspect Biol, vol. 2, no. 9, p. a000364, 2010.
, “PSICIC: noise and asymmetry in bacterial division revealed by computational image analysis at sub-pixel resolution.”, PLoS Comput Biol, vol. 4, no. 11, p. e1000233, 2008.
, “The bacterial actin MreB rotates, and rotation depends on cell-wall assembly.”, Proc Natl Acad Sci U S A, vol. 108, no. 38, pp. 15822-7, 2011.
, “A Periplasmic Polymer Curves Vibrio cholerae and Promotes Pathogenesis.”, Cell, vol. 168, no. 1-2, pp. 172-185.e15, 2017.
, “Mitochondrial translation requires folate-dependent tRNA methylation.”, Nature, vol. 554, no. 7690, pp. 128-132, 2018.
, “A Periplasmic Polymer Curves Vibrio cholerae and Promotes Pathogenesis.”, Cell, vol. 168, no. 1-2, pp. 172-185.e15, 2017.
, “The bacterial actin MreB rotates, and rotation depends on cell-wall assembly.”, Proc Natl Acad Sci U S A, vol. 108, no. 38, pp. 15822-7, 2011.
, “The effect of antibiotics on protein diffusion in the Escherichia coli cytoplasmic membrane.”, PLoS One, vol. 12, no. 10, p. e0185810, 2017.
, “Cell shape and cell-wall organization in Gram-negative bacteria.”, Proc Natl Acad Sci U S A, vol. 105, no. 49, pp. 19282-7, 2008.
, “PSICIC: noise and asymmetry in bacterial division revealed by computational image analysis at sub-pixel resolution.”, PLoS Comput Biol, vol. 4, no. 11, p. e1000233, 2008.
, “PSICIC: noise and asymmetry in bacterial division revealed by computational image analysis at sub-pixel resolution.”, PLoS Comput Biol, vol. 4, no. 11, p. e1000233, 2008.
, “Image analysis in fluorescence microscopy: bacterial dynamics as a case study.”, Bioessays, vol. 34, no. 5, pp. 427-36, 2012.
, “The structure and function of bacterial actin homologs.”, Cold Spring Harb Perspect Biol, vol. 2, no. 9, p. a000364, 2010.
, “The structure and function of bacterial actin homologs.”, Cold Spring Harb Perspect Biol, vol. 2, no. 9, p. a000364, 2010.
, “Image analysis in fluorescence microscopy: bacterial dynamics as a case study.”, Bioessays, vol. 34, no. 5, pp. 427-36, 2012.
, “A Periplasmic Polymer Curves Vibrio cholerae and Promotes Pathogenesis.”, Cell, vol. 168, no. 1-2, pp. 172-185.e15, 2017.
, “Filament depolymerization can explain chromosome pulling during bacterial mitosis.”, PLoS Comput Biol, vol. 7, no. 9, p. e1002145, 2011.
, “Mitochondrial translation requires folate-dependent tRNA methylation.”, Nature, vol. 554, no. 7690, pp. 128-132, 2018.
, “Rod-like bacterial shape is maintained by feedback between cell curvature and cytoskeletal localization.”, Proc Natl Acad Sci U S A, vol. 111, no. 11, pp. E1025-34, 2014.
, “Cell shape and cell-wall organization in Gram-negative bacteria.”, Proc Natl Acad Sci U S A, vol. 105, no. 49, pp. 19282-7, 2008.
, “Escherichia coli translation strategies differ across carbon, nitrogen and phosphorus limitation conditions.”, Nat Microbiol, vol. 3, no. 8, pp. 939-947, 2018.
, “Mitochondrial translation requires folate-dependent tRNA methylation.”, Nature, vol. 554, no. 7690, pp. 128-132, 2018.
, “Filament depolymerization can explain chromosome pulling during bacterial mitosis.”, PLoS Comput Biol, vol. 7, no. 9, p. e1002145, 2011.
, “PSICIC: noise and asymmetry in bacterial division revealed by computational image analysis at sub-pixel resolution.”, PLoS Comput Biol, vol. 4, no. 11, p. e1000233, 2008.
, “Image analysis in fluorescence microscopy: bacterial dynamics as a case study.”, Bioessays, vol. 34, no. 5, pp. 427-36, 2012.
, “Image analysis in fluorescence microscopy: bacterial dynamics as a case study.”, Bioessays, vol. 34, no. 5, pp. 427-36, 2012.
, “The bacterial actin MreB rotates, and rotation depends on cell-wall assembly.”, Proc Natl Acad Sci U S A, vol. 108, no. 38, pp. 15822-7, 2011.
, “Rod-like bacterial shape is maintained by feedback between cell curvature and cytoskeletal localization.”, Proc Natl Acad Sci U S A, vol. 111, no. 11, pp. E1025-34, 2014.
, “Cell shape and cell-wall organization in Gram-negative bacteria.”, Proc Natl Acad Sci U S A, vol. 105, no. 49, pp. 19282-7, 2008.
, “RodZ links MreB to cell wall synthesis to mediate MreB rotation and robust morphogenesis.”, Proc Natl Acad Sci U S A, vol. 112, no. 40, pp. 12510-5, 2015.
, “Filament depolymerization can explain chromosome pulling during bacterial mitosis.”, PLoS Comput Biol, vol. 7, no. 9, p. e1002145, 2011.
, “Filament depolymerization can explain chromosome pulling during bacterial mitosis.”, PLoS Comput Biol, vol. 7, no. 9, p. e1002145, 2011.
, “Mitochondrial translation requires folate-dependent tRNA methylation.”, Nature, vol. 554, no. 7690, pp. 128-132, 2018.
, “The bacterial actin MreB rotates, and rotation depends on cell-wall assembly.”, Proc Natl Acad Sci U S A, vol. 108, no. 38, pp. 15822-7, 2011.
, “Filament depolymerization can explain chromosome pulling during bacterial mitosis.”, PLoS Comput Biol, vol. 7, no. 9, p. e1002145, 2011.
, “Rod-like bacterial shape is maintained by feedback between cell curvature and cytoskeletal localization.”, Proc Natl Acad Sci U S A, vol. 111, no. 11, pp. E1025-34, 2014.
, “Cell shape and cell-wall organization in Gram-negative bacteria.”, Proc Natl Acad Sci U S A, vol. 105, no. 49, pp. 19282-7, 2008.
, “Escherichia coli translation strategies differ across carbon, nitrogen and phosphorus limitation conditions.”, Nat Microbiol, vol. 3, no. 8, pp. 939-947, 2018.
, “The effect of antibiotics on protein diffusion in the Escherichia coli cytoplasmic membrane.”, PLoS One, vol. 12, no. 10, p. e0185810, 2017.
, “RodZ links MreB to cell wall synthesis to mediate MreB rotation and robust morphogenesis.”, Proc Natl Acad Sci U S A, vol. 112, no. 40, pp. 12510-5, 2015.
, “The structure and function of bacterial actin homologs.”, Cold Spring Harb Perspect Biol, vol. 2, no. 9, p. a000364, 2010.
, “Rod-like bacterial shape is maintained by feedback between cell curvature and cytoskeletal localization.”, Proc Natl Acad Sci U S A, vol. 111, no. 11, pp. E1025-34, 2014.
, “The bacterial actin MreB rotates, and rotation depends on cell-wall assembly.”, Proc Natl Acad Sci U S A, vol. 108, no. 38, pp. 15822-7, 2011.
, “Image analysis in fluorescence microscopy: bacterial dynamics as a case study.”, Bioessays, vol. 34, no. 5, pp. 427-36, 2012.
, “The bacterial actin MreB rotates, and rotation depends on cell-wall assembly.”, Proc Natl Acad Sci U S A, vol. 108, no. 38, pp. 15822-7, 2011.
, “Cell shape and cell-wall organization in Gram-negative bacteria.”, Proc Natl Acad Sci U S A, vol. 105, no. 49, pp. 19282-7, 2008.
, “Mitochondrial translation requires folate-dependent tRNA methylation.”, Nature, vol. 554, no. 7690, pp. 128-132, 2018.
, “MreB Orientation Correlates with Cell Diameter in Escherichia coli.”, Biophys J, vol. 111, no. 5, pp. 1035-43, 2016.
, “The bacterial actin MreB rotates, and rotation depends on cell-wall assembly.”, Proc Natl Acad Sci U S A, vol. 108, no. 38, pp. 15822-7, 2011.
, “The effect of antibiotics on protein diffusion in the Escherichia coli cytoplasmic membrane.”, PLoS One, vol. 12, no. 10, p. e0185810, 2017.
, “Rod-like bacterial shape is maintained by feedback between cell curvature and cytoskeletal localization.”, Proc Natl Acad Sci U S A, vol. 111, no. 11, pp. E1025-34, 2014.
, “Escherichia coli translation strategies differ across carbon, nitrogen and phosphorus limitation conditions.”, Nat Microbiol, vol. 3, no. 8, pp. 939-947, 2018.
, “RodZ links MreB to cell wall synthesis to mediate MreB rotation and robust morphogenesis.”, Proc Natl Acad Sci U S A, vol. 112, no. 40, pp. 12510-5, 2015.
, “Cell shape and cell-wall organization in Gram-negative bacteria.”, Proc Natl Acad Sci U S A, vol. 105, no. 49, pp. 19282-7, 2008.
, “PSICIC: noise and asymmetry in bacterial division revealed by computational image analysis at sub-pixel resolution.”, PLoS Comput Biol, vol. 4, no. 11, p. e1000233, 2008.
, “MreB Orientation Correlates with Cell Diameter in Escherichia coli.”, Biophys J, vol. 111, no. 5, pp. 1035-43, 2016.
, “The bacterial actin MreB rotates, and rotation depends on cell-wall assembly.”, Proc Natl Acad Sci U S A, vol. 108, no. 38, pp. 15822-7, 2011.
, “The structure and function of bacterial actin homologs.”, Cold Spring Harb Perspect Biol, vol. 2, no. 9, p. a000364, 2010.
, “The effect of antibiotics on protein diffusion in the Escherichia coli cytoplasmic membrane.”, PLoS One, vol. 12, no. 10, p. e0185810, 2017.
, “Escherichia coli translation strategies differ across carbon, nitrogen and phosphorus limitation conditions.”, Nat Microbiol, vol. 3, no. 8, pp. 939-947, 2018.
, “Rod-like bacterial shape is maintained by feedback between cell curvature and cytoskeletal localization.”, Proc Natl Acad Sci U S A, vol. 111, no. 11, pp. E1025-34, 2014.
, “RodZ links MreB to cell wall synthesis to mediate MreB rotation and robust morphogenesis.”, Proc Natl Acad Sci U S A, vol. 112, no. 40, pp. 12510-5, 2015.
, “Rod-like bacterial shape is maintained by feedback between cell curvature and cytoskeletal localization.”, Proc Natl Acad Sci U S A, vol. 111, no. 11, pp. E1025-34, 2014.
, “Mitochondrial translation requires folate-dependent tRNA methylation.”, Nature, vol. 554, no. 7690, pp. 128-132, 2018.
, “Mitochondrial translation requires folate-dependent tRNA methylation.”, Nature, vol. 554, no. 7690, pp. 128-132, 2018.
, “Mitochondrial translation requires folate-dependent tRNA methylation.”, Nature, vol. 554, no. 7690, pp. 128-132, 2018.
, “The bacterial actin MreB rotates, and rotation depends on cell-wall assembly.”, Proc Natl Acad Sci U S A, vol. 108, no. 38, pp. 15822-7, 2011.
, “Cell shape and cell-wall organization in Gram-negative bacteria.”, Proc Natl Acad Sci U S A, vol. 105, no. 49, pp. 19282-7, 2008.
, “MreB Orientation Correlates with Cell Diameter in Escherichia coli.”, Biophys J, vol. 111, no. 5, pp. 1035-43, 2016.
, “Mitochondrial translation requires folate-dependent tRNA methylation.”, Nature, vol. 554, no. 7690, pp. 128-132, 2018.
, “Mitochondrial translation requires folate-dependent tRNA methylation.”, Nature, vol. 554, no. 7690, pp. 128-132, 2018.
, “Mitochondrial translation requires folate-dependent tRNA methylation.”, Nature, vol. 554, no. 7690, pp. 128-132, 2018.
, “Mitochondrial translation requires folate-dependent tRNA methylation.”, Nature, vol. 554, no. 7690, pp. 128-132, 2018.
, “Mitochondrial translation requires folate-dependent tRNA methylation.”, Nature, vol. 554, no. 7690, pp. 128-132, 2018.
, “PSICIC: noise and asymmetry in bacterial division revealed by computational image analysis at sub-pixel resolution.”, PLoS Comput Biol, vol. 4, no. 11, p. e1000233, 2008.
, “Image analysis in fluorescence microscopy: bacterial dynamics as a case study.”, Bioessays, vol. 34, no. 5, pp. 427-36, 2012.
, “MreB Orientation Correlates with Cell Diameter in Escherichia coli.”, Biophys J, vol. 111, no. 5, pp. 1035-43, 2016.
, “Rod-like bacterial shape is maintained by feedback between cell curvature and cytoskeletal localization.”, Proc Natl Acad Sci U S A, vol. 111, no. 11, pp. E1025-34, 2014.
, “The effect of antibiotics on protein diffusion in the Escherichia coli cytoplasmic membrane.”, PLoS One, vol. 12, no. 10, p. e0185810, 2017.
, “The bacterial actin MreB rotates, and rotation depends on cell-wall assembly.”, Proc Natl Acad Sci U S A, vol. 108, no. 38, pp. 15822-7, 2011.
, “Mitochondrial translation requires folate-dependent tRNA methylation.”, Nature, vol. 554, no. 7690, pp. 128-132, 2018.
, “The effect of antibiotics on protein diffusion in the Escherichia coli cytoplasmic membrane.”, PLoS One, vol. 12, no. 10, p. e0185810, 2017.
, “A Periplasmic Polymer Curves Vibrio cholerae and Promotes Pathogenesis.”, Cell, vol. 168, no. 1-2, pp. 172-185.e15, 2017.
, “The bacterial actin MreB rotates, and rotation depends on cell-wall assembly.”, Proc Natl Acad Sci U S A, vol. 108, no. 38, pp. 15822-7, 2011.
, “RodZ links MreB to cell wall synthesis to mediate MreB rotation and robust morphogenesis.”, Proc Natl Acad Sci U S A, vol. 112, no. 40, pp. 12510-5, 2015.
, “Mitochondrial translation requires folate-dependent tRNA methylation.”, Nature, vol. 554, no. 7690, pp. 128-132, 2018.
, “Image analysis in fluorescence microscopy: bacterial dynamics as a case study.”, Bioessays, vol. 34, no. 5, pp. 427-36, 2012.
, “Mitochondrial translation requires folate-dependent tRNA methylation.”, Nature, vol. 554, no. 7690, pp. 128-132, 2018.
, “Mitochondrial translation requires folate-dependent tRNA methylation.”, Nature, vol. 554, no. 7690, pp. 128-132, 2018.
, “A Periplasmic Polymer Curves Vibrio cholerae and Promotes Pathogenesis.”, Cell, vol. 168, no. 1-2, pp. 172-185.e15, 2017.
, “PSICIC: noise and asymmetry in bacterial division revealed by computational image analysis at sub-pixel resolution.”, PLoS Comput Biol, vol. 4, no. 11, p. e1000233, 2008.
, “MreB Orientation Correlates with Cell Diameter in Escherichia coli.”, Biophys J, vol. 111, no. 5, pp. 1035-43, 2016.
, “Image analysis in fluorescence microscopy: bacterial dynamics as a case study.”, Bioessays, vol. 34, no. 5, pp. 427-36, 2012.
, “The bacterial actin MreB rotates, and rotation depends on cell-wall assembly.”, Proc Natl Acad Sci U S A, vol. 108, no. 38, pp. 15822-7, 2011.
, “RodZ links MreB to cell wall synthesis to mediate MreB rotation and robust morphogenesis.”, Proc Natl Acad Sci U S A, vol. 112, no. 40, pp. 12510-5, 2015.
, “RodZ links MreB to cell wall synthesis to mediate MreB rotation and robust morphogenesis.”, Proc Natl Acad Sci U S A, vol. 112, no. 40, pp. 12510-5, 2015.
, “Mitochondrial translation requires folate-dependent tRNA methylation.”, Nature, vol. 554, no. 7690, pp. 128-132, 2018.
, “Filament depolymerization can explain chromosome pulling during bacterial mitosis.”, PLoS Comput Biol, vol. 7, no. 9, p. e1002145, 2011.
, “MreB Orientation Correlates with Cell Diameter in Escherichia coli.”, Biophys J, vol. 111, no. 5, pp. 1035-43, 2016.
, “The bacterial actin MreB rotates, and rotation depends on cell-wall assembly.”, Proc Natl Acad Sci U S A, vol. 108, no. 38, pp. 15822-7, 2011.
, “Rod-like bacterial shape is maintained by feedback between cell curvature and cytoskeletal localization.”, Proc Natl Acad Sci U S A, vol. 111, no. 11, pp. E1025-34, 2014.
, “Cell shape and cell-wall organization in Gram-negative bacteria.”, Proc Natl Acad Sci U S A, vol. 105, no. 49, pp. 19282-7, 2008.
, “Filament depolymerization can explain chromosome pulling during bacterial mitosis.”, PLoS Comput Biol, vol. 7, no. 9, p. e1002145, 2011.
, “Filament depolymerization can explain chromosome pulling during bacterial mitosis.”, PLoS Comput Biol, vol. 7, no. 9, p. e1002145, 2011.
, “PSICIC: noise and asymmetry in bacterial division revealed by computational image analysis at sub-pixel resolution.”, PLoS Comput Biol, vol. 4, no. 11, p. e1000233, 2008.
, “Rod-like bacterial shape is maintained by feedback between cell curvature and cytoskeletal localization.”, Proc Natl Acad Sci U S A, vol. 111, no. 11, pp. E1025-34, 2014.
, “Mitochondrial translation requires folate-dependent tRNA methylation.”, Nature, vol. 554, no. 7690, pp. 128-132, 2018.
, “MreB Orientation Correlates with Cell Diameter in Escherichia coli.”, Biophys J, vol. 111, no. 5, pp. 1035-43, 2016.
, “RodZ links MreB to cell wall synthesis to mediate MreB rotation and robust morphogenesis.”, Proc Natl Acad Sci U S A, vol. 112, no. 40, pp. 12510-5, 2015.
, “Escherichia coli translation strategies differ across carbon, nitrogen and phosphorus limitation conditions.”, Nat Microbiol, vol. 3, no. 8, pp. 939-947, 2018.
, “Mitochondrial translation requires folate-dependent tRNA methylation.”, Nature, vol. 554, no. 7690, pp. 128-132, 2018.
, “The bacterial actin MreB rotates, and rotation depends on cell-wall assembly.”, Proc Natl Acad Sci U S A, vol. 108, no. 38, pp. 15822-7, 2011.
, “Cell shape and cell-wall organization in Gram-negative bacteria.”, Proc Natl Acad Sci U S A, vol. 105, no. 49, pp. 19282-7, 2008.
, “The bacterial actin MreB rotates, and rotation depends on cell-wall assembly.”, Proc Natl Acad Sci U S A, vol. 108, no. 38, pp. 15822-7, 2011.
, “A Periplasmic Polymer Curves Vibrio cholerae and Promotes Pathogenesis.”, Cell, vol. 168, no. 1-2, pp. 172-185.e15, 2017.
, “Cell shape and cell-wall organization in Gram-negative bacteria.”, Proc Natl Acad Sci U S A, vol. 105, no. 49, pp. 19282-7, 2008.
, “A Periplasmic Polymer Curves Vibrio cholerae and Promotes Pathogenesis.”, Cell, vol. 168, no. 1-2, pp. 172-185.e15, 2017.
, “Escherichia coli translation strategies differ across carbon, nitrogen and phosphorus limitation conditions.”, Nat Microbiol, vol. 3, no. 8, pp. 939-947, 2018.
, “The structure and function of bacterial actin homologs.”, Cold Spring Harb Perspect Biol, vol. 2, no. 9, p. a000364, 2010.
, “The structure and function of bacterial actin homologs.”, Cold Spring Harb Perspect Biol, vol. 2, no. 9, p. a000364, 2010.
, “Filament depolymerization can explain chromosome pulling during bacterial mitosis.”, PLoS Comput Biol, vol. 7, no. 9, p. e1002145, 2011.
, “Filament depolymerization can explain chromosome pulling during bacterial mitosis.”, PLoS Comput Biol, vol. 7, no. 9, p. e1002145, 2011.
, “RodZ links MreB to cell wall synthesis to mediate MreB rotation and robust morphogenesis.”, Proc Natl Acad Sci U S A, vol. 112, no. 40, pp. 12510-5, 2015.
, “Mitochondrial translation requires folate-dependent tRNA methylation.”, Nature, vol. 554, no. 7690, pp. 128-132, 2018.
, “Escherichia coli translation strategies differ across carbon, nitrogen and phosphorus limitation conditions.”, Nat Microbiol, vol. 3, no. 8, pp. 939-947, 2018.
, “Mitochondrial translation requires folate-dependent tRNA methylation.”, Nature, vol. 554, no. 7690, pp. 128-132, 2018.
, “Escherichia coli translation strategies differ across carbon, nitrogen and phosphorus limitation conditions.”, Nat Microbiol, vol. 3, no. 8, pp. 939-947, 2018.
, “Mitochondrial translation requires folate-dependent tRNA methylation.”, Nature, vol. 554, no. 7690, pp. 128-132, 2018.
, “The bacterial actin MreB rotates, and rotation depends on cell-wall assembly.”, Proc Natl Acad Sci U S A, vol. 108, no. 38, pp. 15822-7, 2011.
, “RodZ links MreB to cell wall synthesis to mediate MreB rotation and robust morphogenesis.”, Proc Natl Acad Sci U S A, vol. 112, no. 40, pp. 12510-5, 2015.
, “Mitochondrial translation requires folate-dependent tRNA methylation.”, Nature, vol. 554, no. 7690, pp. 128-132, 2018.
, “A Periplasmic Polymer Curves Vibrio cholerae and Promotes Pathogenesis.”, Cell, vol. 168, no. 1-2, pp. 172-185.e15, 2017.
, “PSICIC: noise and asymmetry in bacterial division revealed by computational image analysis at sub-pixel resolution.”, PLoS Comput Biol, vol. 4, no. 11, p. e1000233, 2008.
, “Cell shape and cell-wall organization in Gram-negative bacteria.”, Proc Natl Acad Sci U S A, vol. 105, no. 49, pp. 19282-7, 2008.
, “Mitochondrial translation requires folate-dependent tRNA methylation.”, Nature, vol. 554, no. 7690, pp. 128-132, 2018.
, “Mitochondrial translation requires folate-dependent tRNA methylation.”, Nature, vol. 554, no. 7690, pp. 128-132, 2018.
, “Rod-like bacterial shape is maintained by feedback between cell curvature and cytoskeletal localization.”, Proc Natl Acad Sci U S A, vol. 111, no. 11, pp. E1025-34, 2014.
, “RodZ links MreB to cell wall synthesis to mediate MreB rotation and robust morphogenesis.”, Proc Natl Acad Sci U S A, vol. 112, no. 40, pp. 12510-5, 2015.
, “Cell shape and cell-wall organization in Gram-negative bacteria.”, Proc Natl Acad Sci U S A, vol. 105, no. 49, pp. 19282-7, 2008.
, “The bacterial actin MreB rotates, and rotation depends on cell-wall assembly.”, Proc Natl Acad Sci U S A, vol. 108, no. 38, pp. 15822-7, 2011.
, “A Periplasmic Polymer Curves Vibrio cholerae and Promotes Pathogenesis.”, Cell, vol. 168, no. 1-2, pp. 172-185.e15, 2017.
, “A Periplasmic Polymer Curves Vibrio cholerae and Promotes Pathogenesis.”, Cell, vol. 168, no. 1-2, pp. 172-185.e15, 2017.
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