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Camellato, B. R.

Publications and source records attributed to Camellato, B. R..

3 recordsLinked to original sources

Genomic analysis of a synthetic reversed sequence reveals default chromatin states in yeast and mammalian cells

Up to 93% of the human genome may show evidence of transcription, yet annotated transcripts account for less than 5%. It is unclear what makes up this major discrepancy, and to what extent the excess transcription has a definable biological function, or is just a pervasive byproduct of non-specific RNA polymerase binding and transcription initiation. Understanding the default state of the genome would be informative in determining whether the observed pervasive activity has a definable function. The genome of any modern organism has undergone billions of years of evolution, making it unclear whether any observed genomic activity, or lack thereof, has been selected for. We sought to address this question by introducing a completely novel 100-kb locus into the genomes of two eukaryotic organisms, S. cerevisiae and M. musculus, and characterizing its genomic activity based on chromatin accessibility and transcription. The locus was designed by reversing (but not complementing) the sequence of the human HPRT1 locus, including [~]30-kb of both upstream and downstream regulatory regions, allowing retention of sequence features like repeat frequency and GC content but ablating coding information and transcription factor binding sites. We also compared this reversed locus with a synthetic version of the normal human HPRT1 locus in both organismal contexts. Despite neither the synthetic HPRT1 locus nor its reverse version coding for any promoters evolved for gene expression in yeast, we observed widespread transcriptional activity of both loci. This activity was observed both when the loci were present as episomes and when chromosomally integrated, although it did not correspond to any of the known HPRT1 functional regulatory elements. In contrast, when integrated in the mouse genome, the synthetic HPRT1 locus showed transcriptional activity corresponding precisely to the HPRT1 coding sequence, while the reverse locus displayed no activity at all. Together, these results show that genomic sequences with no coding information are active in yeast, but relatively inactive in mouse, indicating a potentially major difference in "default genomic states" between these two divergent eukaryotes.

molecular biology↗

Super-enhancers require a combination of classical enhancers and novel facilitator elements to drive high levels of gene expression

Super-enhancers (SEs) are a class of compound regulatory elements which control expression of key cell-identity genes. It remains unclear whether they are simply clusters of independent classical enhancers or whether SEs manifest emergent properties and should therefore be considered as a distinct class of element. Here, using synthetic biology and genome editing, we engineered the well characterised erythroid -globin SE at the endogenous -globin locus, removing all SE constituent elements in a mouse embryonic stem cell-line, to create a "blank canvas". This has allowed us to re-build the SE through individual and combinatorial reinsertion of its five elements (R1, R2, R3, Rm, R4), to test the importance of each constituents sequence and position within the locus. Each re-inserted element independently creates a region of open chromatin and binds its normal repertoire of transcription factors; however, we found a high degree of functional interdependence between the five constituents. Surprisingly, the two strongest -globin enhancers (R1 and R2) act sub-optimally both on their own and in combination, and although the other three elements (R3, Rm and R4) exhibit no discernible enhancer activity, they each exert a major positive effect in facilitating the activity of the classical enhancers (R1 and R2). This effect depends not simply on the sequence of each element but on their positions within the cluster. We propose that these "facilitators" are a novel form of regulatory element, important for ensuring the full activity of SEs, but distinct from conventional enhancer elements.

genetics↗

Manipulating the 3D organization of the largest synthetic yeast chromosome

Whether synthetic genomes can power life has attracted broad interest in the synthetic biology field, especially when the synthetic genomes are extensively modified with thousands of designer features. Here we report de novo synthesis of the largest eukaryotic chromosome thus far, synIV, a 1,454,621-bp Saccharomyces cerevisiae chromosome resulting from extensive genome streamlining and modification. During the construction of synIV, we developed megachunk assembly combined with a hierarchical integration strategy, which significantly increased the accuracy and flexibility of synthetic chromosome construction and facilitated chromosome debugging. In addition to the drastic sequence changes made to synIV by rewriting it, we further manipulated the three-dimensional structure of synIV in the yeast nucleus to explore spatial gene regulation within the nuclear space. Surprisingly, we found few gene expression changes, suggesting that positioning inside the yeast nucleoplasm plays a minor role in gene regulation. Lastly, we tethered synIV to the inner nuclear membrane via its hundreds of loxPsym sites and observed transcriptional repression of the entire chromosome, demonstrating chromosome-wide transcription manipulation without changing the DNA sequences. Our manipulation of the spatial structure of the largest synthetic yeast chromosome shed light on higher-order architectural design of the synthetic genomes. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=199 SRC="FIGDIR/small/487066v2_ufig1.gif" ALT="Figure 1"> View larger version (64K): org.highwire.dtl.DTLVardef@18bf586org.highwire.dtl.DTLVardef@1a471d5org.highwire.dtl.DTLVardef@12d7690org.highwire.dtl.DTLVardef@1c32510_HPS_FORMAT_FIGEXP M_FIG C_FIG HighlightsO_LIDe novo synthesis of the largest eukaryotic chromosome, synIV C_LIO_LISynIV shows similar 3D structure to wild-type IV, despite thousands of changes made to it C_LIO_LI"Inside-out" repositioning of synIV in nucleus shows minor transcriptional changes C_LIO_LIMultipoint tethering synIV to inner nuclear membrane represses transcription of whole chromosome C_LI

synthetic biology↗