Andrey G. Zaraisky
Russian Academy of Sciences
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Featured researches published by Andrey G. Zaraisky.
Nature Biotechnology | 1999
Mikhail V. Matz; Arkady F. Fradkov; Yulii A. Labas; Aleksandr P. Savitsky; Andrey G. Zaraisky; Mikhail L. Markelov; Sergey Lukyanov
We have cloned six fluorescent proteins homologous to the green fluorescent protein (GFP) from Aequorea victoria. Two of these have spectral characteristics dramatically different from GFP, emitting at yellow and red wavelengths. All the proteins were isolated from nonbioluminescent reef corals, demonstrating that GFP-like proteins are not always functionally linked to bioluminescence. The new proteins share the same β-can fold first observed in GFP, and this provided a basis for the comparative analysis of structural features important for fluorescence. The usefulness of the new proteins for in vivo labeling was demonstrated by expressing them in mammalian cell culture and in mRNA microinjection assays in Xenopus embryos.
Nature Methods | 2007
Dmitry Shcherbo; Ekaterina M. Merzlyak; Tatiana V. Chepurnykh; Arkady F. Fradkov; Galina V. Ermakova; Elena A. Solovieva; Konstantin A. Lukyanov; Ekaterina A. Bogdanova; Andrey G. Zaraisky; Sergey Lukyanov; Dmitriy M. Chudakov
For deep imaging of animal tissues, the optical window favorable for light penetration is in near-infrared wavelengths, which requires proteins with emission spectra in the far-red wavelengths. Here we report a far-red fluorescent protein, named Katushka, which is seven- to tenfold brighter compared to the spectrally close HcRed or mPlum, and is characterized by fast maturation as well as a high pH-stability and photostability. These unique characteristics make Katushka the protein of choice for visualization in living tissues. We demonstrate superiority of Katushka for whole-body imaging by direct comparison with other red and far-red fluorescent proteins. We also describe a monomeric version of Katushka, named mKate, which is characterized by high brightness and photostability, and should be an excellent fluorescent label for protein tagging in the far-red part of the spectrum.
Biochemical Journal | 2009
Dmitry Shcherbo; Christopher S. Murphy; Galina V. Ermakova; Elena A. Solovieva; Tatiana V. Chepurnykh; Aleksandr S. Shcheglov; Vladislav V. Verkhusha; Vladimir Z. Pletnev; Kristin L. Hazelwood; Patrick M. Roche; Sergey Lukyanov; Andrey G. Zaraisky; Michael W. Davidson; Dmitriy M. Chudakov
A vast colour palette of monomeric fluorescent proteins has been developed to investigate protein localization, motility and interactions. However, low brightness has remained a problem in far-red variants, which hampers multicolour labelling and whole-body imaging techniques. In the present paper, we report mKate2, a monomeric far-red fluorescent protein that is almost 3-fold brighter than the previously reported mKate and is 10-fold brighter than mPlum. The high-brightness, far-red emission spectrum, excellent pH resistance and photostability, coupled with low toxicity demonstrated in transgenic Xenopus laevis embryos, make mKate2 a superior fluorescent tag for imaging in living tissues. We also report tdKatushka2, a tandem far-red tag that performs well in fusions, provides 4-fold brighter near-IR fluorescence compared with mRaspberry or mCherry, and is 20-fold brighter than mPlum. Together, monomeric mKate2 and pseudo-monomeric tdKatushka2 represent the next generation of extra-bright far-red fluorescent probes offering novel possibilities for fluorescent imaging of proteins in living cells and animals.
Nature Methods | 2010
Dmitry Shcherbo; Irina I. Shemiakina; Anastasiya V. Ryabova; Kathryn E. Luker; Bradley T. Schmidt; Ekaterina A. Souslova; Tatiana V. Gorodnicheva; Lydia A. Strukova; Konstantin M Shidlovskiy; Olga V. Britanova; Andrey G. Zaraisky; Konstantin A. Lukyanov; Victor B. Loschenov; Gary D. Luker; Dmitriy M. Chudakov
Fluorescent proteins with emission wavelengths in the near-infrared and infrared range are in high demand for whole-body imaging techniques. Here we report near-infrared dimeric fluorescent proteins eqFP650 and eqFP670. To our knowledge, eqFP650 is the brightest fluorescent protein with emission maximum above 635 nm, and eqFP670 displays the most red-shifted emission maximum and high photostability.
EMBO Reports | 2006
Artem G. Evdokimov; Matthew Pokross; Nikolay S Egorov; Andrey G. Zaraisky; Ilya V Yampolsky; Ekaterina M. Merzlyak; Andrey N Shkoporov; Ian Sander; Konstantin A. Lukyanov; Dmitriy M. Chudakov
Since the cloning of Aequorea victoria green fluorescent protein (GFP) in 1992, a family of known GFP‐like proteins has been growing rapidly. Today, it includes more than a hundred proteins with different spectral characteristics cloned from Cnidaria species. For some of these proteins, crystal structures have been solved, showing diversity in chromophore modifications and conformational states. However, we are still far from a complete understanding of the origin, functions and evolution of the GFP family. Novel proteins of the family were recently cloned from evolutionarily distant marine Copepoda species, phylum Arthropoda, demonstrating an extremely rapid generation of fluorescent signal. Here, we have generated a non‐aggregating mutant of Copepoda fluorescent protein and solved its high‐resolution crystal structure. It was found that the protein β‐barrel contains a pore, leading to the chromophore. Using site‐directed mutagenesis, we showed that this feature is critical for the fast maturation of the chromophore.
Gene | 1997
Olga V. Kazanskaya; Elena A. Severtzova; K. Anukampa Barth; Galina V. Ermakova; Sergey Lukyanov; Alex O. Benyumov; Maria Pannese; Edoardo Boncinelli; Stephen W. Wilson; Andrey G. Zaraisky
Five novel genes homologous to the homeobox-containing genes Xanf-1 and Xanf-2 of Xenopus and Hesx-1/Rpx of mouse have been identified as a result of a PCR survey of cDNA in sturgeon, zebrafish, newt, chicken and human. Comparative analysis of the homeodomain primary structure of these genes revealed that they belong to a novel class of homeobox genes, which we name Anf. All genes of this class investigated so far have similar patterns of expression during early embryogenesis, characterized by maximal transcript levels being present at the anterior extremity of the main embryonic body axis. The data obtained also suggest that, despite considerable high structural divergence between their homeodomains, all known Anf genes may be orthologues, and thus represent one of the most quickly evolving classes of vertebrate homeobox genes.
Developmental Biology | 1992
Andrey G. Zaraisky; Sergey Lukyanov; O.L. Vasiliev; Y.V. Smirnov; A.V. Belyavsky; O.V. Kazanskaya
To obtain gene sequences controlling the early steps of amphibian neurogenesis, we have performed differential screening of a subtractive cDNA library prepared by a novel PCR-based method from a single presumptive neural plate of a Xenopus laevis late-gastrula embryo. As a result we have isolated a fragment of a novel homeobox gene (named XANF-1, for Xenopus anterior neural folds). This gene is expressed predominantly in the anterior part of the developing nervous system. Such preferential localization of XANF-1 mRNA is established from its initially homogenous distribution in ectoderm of early gastrula. This change in the expression pattern is conditioned by a differential influence of various mesoderm regions on ectoderm: anterior mesoderm activates XANF-1 expression in the overlying ectoderm, whereas posterior axial and ventral mesoderm areas inhibit it. The data obtained demonstrate for the first time that selection of genes for specific expression in the CNS of the early vertebrate embryo is affected not only by chordamesoderm (a neural inductor) but also by ventral mesoderm.
Development | 2004
N. Y. Martynova; Fedor M. Eroshkin; Galina V. Ermakova; Andrey V. Bayramov; Jessica Gray; Robert M. Grainger; Andrey G. Zaraisky
During early development of the nervous system in vertebrates, expression of the homeobox gene Anf/Hesx1/Rpx is restricted to the anterior neural plate subdomain corresponding to the presumptive forebrain. This expression is essential for normal forebrain development and ectopic expression of Xenopus Anf, Xanf1 (also known as Xanf-1), results in severe forebrain abnormalities. By use of transgenic embryos and a novel bi-colour reporter technique, we have identified a cis-regulatory element responsible for transcriptional repression of Xanf1 that defines its posterior expression limit within the neural plate. Using this element as the target in a yeast one-hybrid system, we identified two transcription factors, FoxA4a/Pintallavis and Xvent2 (also known as Xvent-2), which are normally expressed posterior to Xanf1. Overexpression of normal and dominant-negative versions of these factors, as well as inhibition of their mRNA translation by antisense morpholinos, show that they actually function as transcriptional repressors of Xanf1 just behind its posterior expression limit. The extremely high similarity of the identified Anf cis-regulatory sequences in Xenopus, chick and human, indicates that the mechanism restricting posterior expression of Anf in Xenopus is shared among vertebrates. Our findings support Nieuwkoops activation-transformation model for neural patterning, according to which the entire neurectoderm is initially specified towards an anterior fate, which is later suppressed posteriorly as part of the trunk formation process.
Gene | 2002
Fedor M. Eroshkin; Olga V. Kazanskaya; N. Y. Martynova; Andrey G. Zaraisky
Investigation of molecular mechanisms underlying early patterning of the nervous system is an important task of modern developmental biology. Previously, we identified a novel homeobox gene, Anf, that is expressed in the most anterior zone at the beginning of neuroectoderm specification. The expression pattern of Anf corresponds to primordia of the telencephalon and the rostral part of the diencephalon. In the present work, we investigated cis-regulation of expression of the Xenopus laevis Anf, Xanf-1. Two elements, highly conserved in Xenopus, chick and human, were identified within the Xanf-1 promoter region. The first element, located near position -500, is necessary for overall enhancement of the Xanf-1 expression. The second element, near position -200, is crucial for maintenance of the Xanf-1 expression at moderate levels and also for specific localization of the expression in the anterior neuroectoderm. Thus, the distal part of this element is responsible for suppression of Xanf-1 posterior to the normal expression domain of this gene. The data obtained corroborate with the Nieuwkoop two-signal model of neural induction. This model states that at the first step of induction, all neuroectoderm acquires potencies to develop toward forebrain structures, but later these potencies are suppressed in posterior regions.
Biochemical Journal | 2011
Ekaterina O. Serebrovskaya; Tatiana V. Gorodnicheva; Galina V. Ermakova; Elena A. Solovieva; George V. Sharonov; Elena V. Zagaynova; Dmitriy M. Chudakov; Sergey Lukyanov; Andrey G. Zaraisky; Konstantin A. Lukyanov
Proteins of the GFP (green fluorescent protein) family are widely used as passive reporters for live cell imaging. In the present study we used H2B (histone H2B)-tKR (tandem KillerRed) as an active tool to affect cell division with light. We demonstrated that H2B-tKR-expressing cells behave normally in the dark, but transiently cease proliferation following green-light illumination. Complete light-induced blockage of cell division for approx. 24 h was observed in cultured mammalian cells that were either transiently or stably transfected with H2B-tKR. Illuminated cells then returned to normal division rate. XRCC1 (X-ray cross complementing factor 1) showed immediate redistribution in the illuminated nuclei of H2B-tKR-expressing cells, indicating massive light-induced damage of genomic DNA. Notably, nondisjunction of chromosomes was observed for cells that were illuminated during metaphase. In transgenic Xenopus embryos expressing H2B-tKR under the control of tissue-specific promoters, we observed clear retardation of the development of these tissues in green-light-illuminated tadpoles. We believe that H2B-tKR represents a novel optogenetic tool, which can be used to study mitosis and meiosis progression per se, as well as to investigate the roles of specific cell populations in development, regeneration and carcinogenesis in vivo.