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Biology subjects

Izgu, E. C.

Publications and source records attributed to Izgu, E. C..

5 recordsLinked to original sources

USING SMALL MOLECULES TO TURN AN RNA APTAMER INTO SENSORS FOR INORGANIC TARGETS WITHOUT IN VITRO SELECTION

Fluorescent light-up aptamer (FLAP) systems are promising biosensing platforms that can be genetically encoded. Here, we describe how a single FLAP that works with specific organic ligands can detect multiple, structurally unique, non-fluorogenic, and reactive inorganic targets. We developed 4-O-functionalized benzylidene imidazolinones as pre-ligands with suppressed fluorescent binding interactions with the RNA aptamer Baby Spinach. Inorganic targets, hydrogen sulfide (H2S) or hydrogen peroxide (H2O2), can specifically convert these pre-ligands into the native benzylidene imidazolinones, and thus be detected with Baby Spinach. Adaptation of this approach to live cells opened a new opportunity for top-down construction of whole-cell sensors: Escherichia coli transformed with a Baby Spinach-encoding plasmid and incubated with pre-ligands generated fluorescence in response to exogenous H2S or H2O2. Our approach eliminates the requirement of in vitro selection of a new aptamer sequence for molecular target detection, allows for the detection of short-lived targets, thereby advancing FLAP systems beyond their current capabilities. Leveraging the functional group reactivity of small molecules can lead to cell-based sensors for inorganic molecular targets, exploiting a new synergism between synthetic organic chemistry and synthetic biology.

biochemistry↗

Activity-Based Imaging of Lipid Environments Targeted by Peroxynitrite in Biomimetic Vesicles and Live Cells

Lipid environments can be chemically impacted by peroxynitrite (ONOO-), a reactive species generated under nitrative stress. Molecular tools used for investigating ONOO- reactivity in biological membranes remain underdeveloped, available probes lack the ability of subcellular localization, and the standard methods for detecting ONOO- in vivo are indirect. Here we investigated ONOO- in diverse lipid environments (biomimetic giant vesicles, live mammalian cells, and within the lung lining) using a biocompatible and membrane-localized phospholipid named DPPC-TC-ONOO-. This designer lipid and 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphocholine self-assemble to giant vesicles that respond to ONOO- by generating fluorescence. These vesicles remain intact after sensing ONOO- and exhibit excellent selectivity against other redox species. We delivered DPPC-TC-ONOO- into live HeLa and RAW cells via lipid nanoparticles (LNPs). Cytokine-induced nitrative stress led to enhanced fluorescence of the lipid clusters, primarily in the endoplasmic reticulum. These LNPs allowed the detection of ONOO- reactivity and nitrative stress around bronchioles within precision cut lung slices in response to acute lung injury (ALI). Furthermore, the use of the LNPs allowed for the detection of pulmonary macrophages from bronchoalveolar lavage following ALI in C57BL6/J but not in Nos2-/- mice. These investigations revealed significant advantages of DPPC-TC-ONOO- over its non-amphiphilic analog. Our work presents (i) an unprecedented function for biomimetic membranes, (ii) the potential of LNPs for delivering designer lipids into cells and tissues, (iii) real-time imaging of endogenous ONOO- at the organelle level in mammalian cells, and (iv) a direct method of studying nitrative stress due to ALI ex vivo and in vivo.

biochemistry↗

MicroRNA Detection in Biological Media Using a Split Aptamer Platform

Intercellular microRNA (miRNA)-based communication has been implicated in a wide array of functional and dysfunctional biological processes. This has raised attention to the potential use of miRNAs as biomarkers for disease diagnosis and prognosis and produced interest in their detection. Though the list of clinically significant miRNA biomarkers is rapidly expanding, it remains challenging to adapt current tools to investigate new targets in biological environments. Systematic approaches for the rapid development of miRNA biosensors are valuable to reduce this disparity. We describe here a methodology for developing aptamer-based fluorescent biosensors that can specifically detect miRNAs in biological environments, including culture medium from HeLa cells, human serum, and human plasma. This methodology includes the semi-rational design of the hybridization between a pair of split DNA aptamer oligonucleotides and the miRNA target to build a pool of potential sensor designs, and the screening of this pool for designs with high signal-to-background ratio and sequence selectivity. The method uses natural oligonucleotides without chemical modification, and is effective in buffer, 10%, and 30% (v/v) biological media. Following this approach, we developed sensors that detect three miRNA targets (miR-19b, miR-21, and miR-92a) at concentrations as low as 5 nM without amplification and are selective against single-nucleotide mutants. This work expands upon the current design principles of nucleic acid-based biosensors and provides a method to rapidly develop diagnostic tools for novel and niche miRNA targets of interest.

biochemistry↗

Introducing a New Bond-Forming Activity in an Archaeal DNA Polymerase by Structure-Guided Enzyme Redesign

DNA polymerases have evolved to feature a highly conserved activity across the tree of life: formation of, without exception, phosphodiester linkages that create the repeating sugarphosphate backbone of DNA. Can this linkage selectivity observed in nature be overcome by design to produce non-natural nucleic acids? Here, we report that structure-guided redesign of an archaeal DNA polymerase (9{degrees}N) enables a new polymerase activity that is undetectable in the wild type enzyme: catalyzing the formation of N3[->]P5 phosphoramidate linkages in the presence of 3-amino-2,3-dideoxynucleoside 5-triphosphate (3-NH2-ddNTP) building blocks. Replacing a highly conserved metal-binding aspartate in the 9{degrees}N active site (Asp-404) with asparagine was key to the emergence of this unnatural enzyme activity. Molecular dynamics simulations provided insights into how a single substitution could enhance the productive positioning of the 3-amino nucleophile in the active site. Further remodeling of the protein-nucleic acid interface with substitutions in the finger subdomain led to a quadruple-mutant variant (9{degrees}N-NRQS) that incorporated 3-NH2-ddNTPs into a 3-amino-primer on various DNA templates. This work presents the first example of an active-site substitution of a metal-binding residue that leads to a novel activity in a DNA polymerase, and sheds light on the molecular basis of substrate fidelity and latent promiscuity in enzymes.

biochemistry↗

Bioorthogonal Functionalization of Material Surfaces with Bioactive Molecules

The functionalization of material surfaces with biologically active molecules is crucial for enabling technologies in life sciences, biotechnology, and medicine. However, achieving biocompatibility and bioorthogonality with current synthetic methods remains a challenge. We report herein a novel surface functionalization method that proceeds chemoselectively and without a free transition metal catalyst. In this method, a coating is first formed via the tyrosinase-catalyzed putative polymerization of a tetrazine-containing catecholamine (DOPA-Tet). One or more types of molecule of interest containing trans-cyclooctene are then grafted onto the coating via tetrazine ligation. The entire process proceeds under physiological conditions and is suitable for grafting bioactive molecules with diverse functions and structural complexities. Utilizing this method, we functionalized material surfaces with enzymes (alkaline phosphatase, glucose oxidase, horseradish peroxidase), a cyclic peptide (cyclo[Arg-Gly-Asp-D-Phe-Lys], or c(RGDfK)), and an antibiotic (vancomycin). Colorimetric assays confirmed the maintenance of the biocatalytic activities of the grafted enzymes on the surface. We established the mammalian cytocompatibility of the functionalized materials with fibroblasts. Surface functionalization with c(RGDfK) showed improved fibroblast cell adhesion and cytoskeletal organization. Microbiological studies with Staphylococcus aureus indicated that surfaces coated using DOPA-Tet inhibit the formation of biofilms. Vancomycin-grafted surfaces additionally display significant inhibition of planktonic S. aureus growth.

biochemistry↗