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Gerdes, P.

Publications and source records attributed to Gerdes, P..

5 recordsLinked to original sources

Revisiting the impact of synthetic ORF sequences on engineered LINE-1 retrotransposition

The retrotransposon Long Interspersed Element-1 (L1) contains adenosine rich open reading frames (ORFs), a characteristic that limits its expression in mammalian cells. A synthetic mouse L1 (smL1) with ORF adenosine content decreased from 40% to 26% showed increased mRNA expression and retrotransposed far more efficiently than the native parental element, L1spa (1). Here, we observe two nonsynonymous substitutions between the L1spa and smL1 ORF1 sequences, and note that the smL1 3UTR lacks a conserved guanosine-rich region (GRR) which could take on a G-quadruplex secondary structure. We find that the combined effect of the altered ORF1p amino acid sequence and the GRR 3UTR deletion, rather than synthetic ORF sequences, accounts for the increase in smL1 retrotransposition efficiency over L1spa. Furthermore, we demonstrate that the presence and position of the GRR within the L1 reporter construct impact mouse L1 ORF1p expression and retrotransposition efficiency. Our results prompt a reevaluation of synthetic L1 activity and suggest that the manner in which L1 sequences are cloned into engineered reporter vectors has, in some cases, resulted in an underestimation of native mouse L1 retrotransposition efficiency. Author SummaryL1 retrotransposons are mobile DNA elements or "jumping genes" that can copy- and-paste their sequences to new locations in the host genome. The jumping ability, or retrotransposition efficiency, of individual L1 elements can be evaluated using a cultured cell assay in which the L1 is tagged in its 3 untranslated region (3UTR) with a reporter gene that becomes expressed upon successful retrotransposition. In a previous study, authors Han and Boeke reported that the retrotransposition efficiency of a mouse L1 element could be enhanced dramatically by synthetically increasing the GC content of the L1 open reading frames (ORFs) without changing their amino acid sequence. Curiously, a similarly constructed synthetic human L1 achieved only a modest increase in retrotransposition efficiency over the native element. Here, we find that two coding changes and a partial deletion comprising a guanine-rich region (GRR) of the mouse L1 3UTR sequence which occurred during construction of the synthetic mouse L1 reporter are responsible for the increased jumping of the synthetic mouse L1 construct relative to the native L1spa element. We find that the presence/absence and also the placement of this GRR 3UTR region within the reporter construct impact ORF1p expression and engineered L1 retrotransposition efficiency. Together, our study reconciles the disparate impacts of synthetic sequences upon human and mouse L1 retrotransposition efficiency, prompts a reconsideration of numerous studies using synthetic L1 constructs, and will inform the ongoing use of synthetic and natural mouse L1 reporter constructs in vivo and in vitro.

molecular biology↗

Mouse L1s fade with age: a methylation-enforced mechanism for attenuation of L1 retrotransposition potential

Mice harbor [~]2,800 intact copies of the retrotransposon Long Interspersed Element 1 (L1). The in vivo retrotransposition capacity of an L1 copy is defined by both its sequence integrity and epigenetic status, including DNA methylation of the monomeric units constituting young mouse L1 promoters. Locus-specific L1 methylation dynamics during development may therefore elucidate and explain spatiotemporal niches of endogenous retrotransposition, but remain unresolved. Here, we interrogate the retrotransposition efficiency and epigenetic fate of source (donor) L1s, identified as mobile in vivo. We demonstrate that promoter monomer loss consistently attenuates the relative retrotransposition potential of their offspring (daughter) L1 insertions. We also observe that most donor/daughter L1 pairs are efficiently methylated upon differentiation in vivo and in vitro. We employ Oxford Nanopore Technologies (ONT) long-read sequencing to resolve L1 methylation genome-wide and with locus-specific resolution, revealing a distinctive "smile" pattern in methylation levels across the L1 promoter region and thereby elucidating a molecular mechanism potentially underpinning L1 promoter shortening. Together, our results offer a novel perspective on the interplay between epigenetic repression, L1 evolution, and genome stability.

genetics↗

LINE-1 retrotransposon activation intrinsic to interneuron development

Retrotransposons are a reservoir of cis-regulatory innovation1-3. Developmental programs that activate these elements could, in principle, manifest in lineage-specific retrotransposition. Somatic LINE-1 (L1) retrotransposon insertions have been detected in human and non-human primate neurons4-7. It is however unknown whether L1 is mobile in only some neuronal lineages, or therein regulates neurodevelopmental genes. Here, we report programmed L1 activation by SOX6, a transcription factor critical for parvalbumin (PV) interneuron development8-10. PV+ neurons permit L1 mobilization in vitro and in vivo, harbor unmethylated L1 promoters, and express full-length L1 mRNAs and proteins. Via nanopore long-read sequencing, we identify unmethylated L1 promoters proximal to PV+ neuron genes. One such L1, which promotes transcription of a novel CAPS2 gene isoform, significantly enhances neuron morphological complexity when phenotyped in vitro. These data highlight the contribution made by L1 cis-regulatory elements to PV+ neuron development and transcriptome diversity, uncovered due to L1 mobility in this milieu.

genomics↗

Retrotransposon instability dominates the acquired mutation landscape of mouse induced pluripotent stem cells

Induced pluripotent stem cells (iPSCs) can in principle differentiate into any cell of the body, and have revolutionized biomedical research and regenerative medicine. Unlike their human counterparts, mouse iPSCs (miPSCs) are reported to silence transposable elements (TEs) and prevent TE-mediated mutagenesis. Here we applied short-read or Oxford Nanopore Technologies (ONT) long-read genome sequencing to 38 bulk miPSC lines reprogrammed from 10 parental cell types, and 18 single-cell miPSC clones. While single nucleotide variants and structural variants restricted to miPSCs were rare, we found 83 de novo TE insertions, including examples intronic to Brca1 and Dmd. LINE-1 (L1) retrotransposons were profoundly hypomethylated in miPSCs, beyond other TEs and the genome overall, and harbored alternative protein-coding gene promoters. Treatment with the L1 inhibitor lamivudine did not hinder reprogramming and efficiently blocked endogenous retrotransposition, as detected by ONT sequencing. These experiments reveal the complete spectrum and potential significance of mutations acquired by miPSCs.

genomics↗

Human genome integration of SARS-CoV-2 contradicted by long-read sequencing

A recent study proposed severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) hijacks the LINE-1 (L1) retrotransposition machinery to integrate into the DNA of infected cells. If confirmed, this finding could have significant clinical implications. Here, we applied deep (>50x) long-read Oxford Nanopore Technologies (ONT) sequencing to HEK293T cells infected with SARS-CoV-2, and did not find the virus integrated into the genome. By examining ONT data from separate HEK293T cultivars, we completely resolved 78 L1 insertions arising in vitro in the absence of L1 overexpression systems. ONT sequencing applied to hepatitis B virus (HBV) positive liver cancer tissues located a single HBV insertion. These experiments demonstrate reliable resolution of retrotransposon and exogenous virus insertions via ONT sequencing. That we found no evidence of SARS-CoV-2 integration suggests such events are, at most, extremely rare in vivo, and therefore are unlikely to drive oncogenesis or explain post-recovery detection of the virus.

genomics↗