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1.
ACS Nano ; 15(1): 489-502, 2021 01 26.
Article in English | MEDLINE | ID: mdl-33370106

ABSTRACT

DNA polymerases have revolutionized the biotechnology field due to their ability to precisely replicate stored genetic information. Screening variants of these enzymes for specific properties gives the opportunity to identify polymerases with different features. We have previously developed a single-molecule DNA sequencing platform by coupling a DNA polymerase to an α-hemolysin pore on a nanopore array. Here, we use this approach to demonstrate a single-molecule method that enables rapid screening of polymerase variants in a multiplex manner. In this approach, barcoded DNA strands are complexed with polymerase variants and serve as templates for nanopore sequencing. Nanopore sequencing of the barcoded DNA reveals both the barcode identity and kinetic properties of the polymerase variant associated with the cognate barcode, allowing for multiplexed investigation of many polymerase variants in parallel on a single nanopore array. Further, we develop a robust classification algorithm that discriminates kinetic characteristics of the different polymerase mutants. As a proof of concept, we demonstrate the utility of our approach by screening a library of ∼100 polymerases to identify variants for potential applications of biotechnological interest. We anticipate our screening method to be broadly useful for applications that require polymerases with altered physical properties.


Subject(s)
Nanopores , DNA , DNA-Directed DNA Polymerase , Kinetics , Sequence Analysis, DNA
2.
Proc Natl Acad Sci U S A ; 116(22): 10804-10812, 2019 05 28.
Article in English | MEDLINE | ID: mdl-31088962

ABSTRACT

Metazoan cell polarity is controlled by a set of highly conserved proteins. Lethal giant larvae (Lgl) functions in apical-basal polarity through phosphorylation-dependent interactions with several other proteins as well as the plasma membrane. Phosphorylation of Lgl by atypical protein kinase C (aPKC), a component of the partitioning-defective (Par) complex in epithelial cells, excludes Lgl from the apical membrane, a crucial step in the establishment of epithelial cell polarity. We present the crystal structures of human Lgl2 in both its unphosphorylated and aPKC-phosphorylated states. Lgl2 adopts a double ß-propeller structure that is unchanged by aPKC phosphorylation of an unstructured loop in its second ß-propeller, ruling out models of phosphorylation-dependent conformational change. We demonstrate that phosphorylation controls the direct binding of purified Lgl2 to negative phospholipids in vitro. We also show that a coil-helix transition of this region that is promoted by phosphatidylinositol 4,5-bisphosphate (PIP2) is also phosphorylation-dependent, implying a highly effective phosphorylative switch for membrane association.


Subject(s)
Cell Polarity/physiology , Cytoskeletal Proteins , Protein Kinase C , Cytoskeletal Proteins/chemistry , Cytoskeletal Proteins/metabolism , Humans , Models, Molecular , Phosphatidylinositol 4,5-Diphosphate , Phosphorylation , Protein Kinase C/chemistry , Protein Kinase C/metabolism
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