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ABE-ultramax for high-efficiency biallelic adenine base editing in zebrafish
Advancements in CRISPR technology, particularly the development of base editors, revolutionize genetic variant research. When combined with model organisms like zebrafish, base editors significantly accelerate and refine in vivo analysis of genetic variations. However, base editors are restricted by protospacer adjacent motif (PAM) sequences and specific editing windows, hindering their applicability to a broad spectrum of genetic variants. Additionally, base editors can introduce unintended mutations and often exhibit reduced efficiency in living organisms compared to cultured cell lines. Here, we engineer a suite of adenine base editors (ABEs) called ABE-Ultramax (Umax), demonstrating high editing efficiency and low rates of insertions and deletions (indels) in zebrafish. The ABE-Umax suite of editors includes ABEs with shifted, narrowed, or broadened editing windows, reduced bystander mutation frequency, and highly flexible PAM sequence requirements. These advancements have the potential to address previous challenges in disease modeling and advance gene therapy applications.

Cytosine base editors with increased PAM and deaminase motif flexibility for gene editing in zebrafish
Cytosine base editing is a powerful tool for making precise single nucleotide changes in cells and model organisms like zebrafish, which are valuable for studying human diseases. However, current base editors struggle to edit cytosines in certain DNA contexts, particularly those with GC and CC pairs, limiting their use in modelling disease-related mutations. Here we show the development of zevoCDA1, an optimized cytosine base editor for zebrafish that improves editing efficiency across various DNA contexts and reduces restrictions imposed by the protospacer adjacent motif. We also create zevoCDA1-198, a more precise editor with a narrower editing window of five nucleotides, minimizing off-target effects. Using these advanced tools, we successfully generate zebrafish models of diseases that were previously challenging to create due to sequence limitations. This work enhances the ability to introduce human pathogenic mutations in zebrafish, broadening the scope for genomic research with improved precision and efficiency.

Highly efficient genome editing using oocyte-specific zcas9 transgenic zebrafish. Liu Y, Zhang C, Zhang Y, Lin S, Shi DL, Shao M
Highly efficient genome editing using oocyte-specific zcas9 transgenic zebrafish Since its first application to induce mutations in mammalian cells (Cong et al., 2013; Mali et al., 2013), CRISPR/Cas9 rapidly becomes a routine technique to perform genome editing in a variety of biological systems due to its facile, robust, and multiplexable features (Hwang et al., 2013; Guo et al., 2014; Wang et al., 2013). In every system, Cas9 and sgRNA should co-express to induce mutations. This is typically achieved by injection of the sgRNA mixed with Cas9 mRNA or protein into the fertilized eggs in zebrafish. As the in vivo translation of capped RNAs delay the presence of sufficient Cas9 protein, the mRNA injection produces more mosaic animals and shows relatively lower efficiency when compared to Cas9 protein injection (Burger et al., 2016). However, it is much more cost effective than using commercially available Cas9 protein, especially in the case of large-scale mutation screens. To further simplify this procedure, lower the cost and maintain an acceptable high genome editing efficiency in zebrafish, we set out to generate a transgenic line with stable and specific Cas9 expression in the egg. zpc (zp3b) promoter (zpc0.5) was reported to drive robust and specific GFP expression in the oocyte (Onichtchouk et al., 2003), we thus fused it with a zebrafish codon optimized cas9 (zcas9) followed by an SV40 3' UTR (Fig. 1A and File S1; Liu et al., 2014), and introduced this construct to zebrafish genome by Tol2 mediated transgenesis (Urasaki et al., 2006). To screen female F0 fish harboring this transgene, the F0 female founders were outcrossed with the wild-type male, the resulting eggs were injected with an sgRNA targeting slc45a2 (Moreno-Mateos et al., 2015), a gene essential for melanin synthesis, and assayed for their pigmentation phenotype. We found that the offspring of one founder showed a high proportion of pigmentation defect. Some of them exhibited a homozygous mutant like albino phenotype, suggesting a robust Cas9 expression in the egg and a very high efficient gene disruption. To examine the specificity of zcas9 expression in the transgenic line, the offspring (F1) of this F0 founder were raised to adulthood, and the ovaries of female F1 transgenic fish were dissected and subjected to in situ hybridization (ISH) employing the probe of zcas9. We found that the transcripts of zcas9 were specifically distributed in oocytes with a diameter of 40-200 µm, at around IB-II stages, while in WT embryos, no hybridization signals were detected (Fig. 1B, C). We did not detect zcas9 expression in stage IA oocytes or in larger ones after stage II. Accordingly, by RT-PCR, we also failed
BE4max and AncBE4max Are Efficient in Germline Conversion of C:G to T:A Base Pairs in Zebrafish
The ease of use and robustness of genome editing by CRISPR/Cas9 has led to successful use of gene knockout zebrafish for disease modeling. However, it still remains a challenge to precisely edit the zebrafish genome to create single-nucleotide substitutions, which account for ~60% of human disease-causing mutations. Recently developed base editing nucleases provide an excellent alternate to CRISPR/Cas9-mediated homology dependent repair for generation of zebrafish with point mutations. A new set of cytosine base editors, termed BE4max and AncBE4max, demonstrated improved base editing efficiency in mammalian cells but have not been evaluated in zebrafish. Therefore, we undertook this study to evaluate their efficiency in converting C:G to T:A base pairs in zebrafish by somatic and germline analysis using highly active sgRNAs to twist and ntl genes. Our data demonstrated that these improved BE4max set of plasmids provide desired base substitutions at similar efficiency and without any indels compared to the previously reported BE3 and Target-AID plasmids in zebrafish. Our data also showed that AncBE4max produces fewer incorrect and bystander edits, suggesting that it can be further improved by codon optimization of its components for use in zebrafish.

Structure and evolution-guided design of minimal RNA-guided nucleases
The design of RNA-guided nucleases with properties not limited by evolution can expand programmable genome-editing capabilities. However, generating diverse multidomain proteins with robust enzymatic properties remains challenging. Here, we use a protein design strategy that couples a structure-guided inverse-folding model with evolution-informed residue constraints to generate active, divergent variants of TnpB, a minimal CRISPR-Cas12–like nuclease, termed SynTnpBs. High-throughput screening of artificial intelligence–generated variants yielded editors that retained or exceeded wild-type activity in bacterial, plant, and human cells. Cryo–electron microscopy–based structure determination of the most divergent variant revealed stabilizing contacts in the RNA–DNA interfaces across conformations, demonstrating the design potential of this approach. Together, these results establish a strategy for creating non-natural RNA-guided nucleases and conformationally active nucleic acid binders, enlarging the designable protein space. , Editor’s summary Enzyme design and engineering are challenging in part because there are few ways to improve catalytic activity but many ways to impair it. Evolution-aware approaches can leverage information from our collection of known natural sequences to guide the generation of diverse engineered enzymes that are more likely to retain function. Skopintsev et al . demonstrated engineering of an RNA-guided nuclease using inverse protein-folding models. Screening of candidates nominated by their approach revealed improvement of genome-editing activity. An experimental structure revealed how conformational dynamics are changed in the engineered enzymes, stabilizing the key RNA-DNA interface. —Michael A. Funk

Structure and evolution-guided design of minimal RNA-guided nucleases
The design of RNA-guided nucleases with properties not limited by evolution can expand programmable genome-editing capabilities. However, generating diverse multidomain proteins with robust enzymatic properties remains challenging. Here, we use a protein design strategy that couples a structure-guided inverse-folding model with evolution-informed residue constraints to generate active, divergent variants of TnpB, a minimal CRISPR-Cas12–like nuclease, termed SynTnpBs. High-throughput screening of artificial intelligence–generated variants yielded editors that retained or exceeded wild-type activity in bacterial, plant, and human cells. Cryo–electron microscopy–based structure determination of the most divergent variant revealed stabilizing contacts in the RNA–DNA interfaces across conformations, demonstrating the design potential of this approach. Together, these results establish a strategy for creating non-natural RNA-guided nucleases and conformationally active nucleic acid binders, enlarging the designable protein space. , Editor’s summary Enzyme design and engineering are challenging in part because there are few ways to improve catalytic activity but many ways to impair it. Evolution-aware approaches can leverage information from our collection of known natural sequences to guide the generation of diverse engineered enzymes that are more likely to retain function. Skopintsev et al . demonstrated engineering of an RNA-guided nuclease using inverse protein-folding models. Screening of candidates nominated by their approach revealed improvement of genome-editing activity. An experimental structure revealed how conformational dynamics are changed in the engineered enzymes, stabilizing the key RNA-DNA interface. —Michael A. Funk

Targeted mutagenesis of specific genomic DNA sequences in animals for the in vivo generation of variant libraries
Understanding how the number, placement and affinity of transcription factor binding sites dictates gene regulatory programs remains a major unsolved challenge in biology, particularly in the context of multicellular organisms. To uncover these rules, it is first necessary to find the binding sites within a regulatory region with high precision, and then to systematically modulate this binding site arrangement while simultaneously measuring the effect of this modulation on output gene expression. Massively parallel reporter assays (MPRAs), where the gene expression stemming from 10,000s of in vitro-generated regulatory sequences is measured, have made this feat possible in high-throughput in single cells in culture. However, because of lack of technologies to incorporate DNA libraries, MPRAs are limited in whole organisms. To enable MPRAs in multicellular organisms, we generated tools to create a high degree of mutagenesis in specific genomic loci in vivo using base editing. Targeting GFP integrated in the genome of Drosophila cell culture and whole animals as a case study, we show that the base editor AIDevoCDA1 stemming from sea lamprey fused to nCas9 is highly mutagenic. Surprisingly, longer gRNAs increase mutation efficiency and expand the mutating window, which can allow the introduction of mutations in previously untargetable sequences. Finally, we demonstrate arrays of >20 gRNAs that can efficiently introduce mutations along a 200bp sequence, making it a promising tool to test enhancer function in vivo in a high throughput manner.

Highly Efficient CRISPR-Cas9-Based Methods for Generating Deletion Mutations and F0 Embryos that Lack Gene Function in Zebrafish
Cas9 RNP complexes consisting of synthetic crRNA:tracrRNA duplex guide RNAs consistently induce mutations in virtually all copies of a targeted gene in zebrafish embryos. Hoshijima et al. show these tools allow effective screening of individual or combinations of gene function in F0 embryos and the facile induction of deletion mutations.

AI-designed nucleases build on nature’s design
Researchers used AI to create variants of a CRISPR-Cas12-like nuclease, some of which show increased editing activity
Sequence Context‐Agnostic TadA‐Derived Cytosine Base Editors for Genome‐Wide Editing in Zebrafish
zTadA-CBEs, developed by introducing key mutations into TadA8e, enable efficient and precise sequence context-agnostic cytosine base editing. Specifically, zTadA-BE4max and zTadA-BEmv provide complem...

(PDF) Highly efficient genome editing using oocyte-specific z cas9 transgenic zebrafish
PDF | Since its first application, CRISPR/Cas9 rapidly becomes a routine technique to perform genome editing in a variety of biological systems. To... | Find, read and cite all the research you need on ResearchGate

Generative AI comes to gene editing
Profluent releases AI-designed gene editor, OpenCRISPR-1
Stage- and tissue-specific gene editing using 4-OHT–inducible Cas9 in whole organism
Li et al. report a novel Cas9-based spatiotemporal gene-editing approach in zebrafish. Given the limited germline transmission efficiency of knock-in allel

LLM-Assisted Reanalysis of Unsolved Rare Disease Genomes Increases Diagnostic Yield
Rare and undiagnosed genetic disorders affect millions of patients globally, and many patients endure years of inconclusive testing. Conventional genomic interpretation can be insufficiently sensit...

BMP–Smad1/9 signaling plays a critical role in regulating zebrafish PGC proliferation
The germ cell fate in zebrafish is determined by germ plasm, whereas mammalian germ cell fate is induced by bone morphogenetic protein (BMP) signaling. It remains elusive whether BMP signaling is implicated in zebrafish germ cell development. Here, we demonstrate that BMP–Smad1/9 signaling plays a critical role in zebrafish primordial germ cell (PGC) maintenance rather than fate determination. BMP inhibition or smad1/9 knockdown reduces PGC numbers. Furthermore, we generated PGC-specific smad1/9 knockouts using a transgenic approach with PGC-specifically expressed Cas9 and ubiquitously expressed guide RNAs. Smad1/9 deficiency in PGCs leads to impaired PGC proliferation and increased apoptosis, consequently reducing PGC numbers. Transcriptome analysis revealed unchanged PGC-specific gene expression, but a marked upregulation of DNA damage response-related genes, which is validated by ectopic ATR–pChk1 activation in PGCs and PGC restoring by ATR inhibition. Collectively, these findings underscore conserved but functionally distinct roles of BMP signaling in vertebrate PGC development.

Designing RNA sequencing experiments: A practical guide to reproducible gene expression analysis
RNA sequencing (RNA-seq) has become a cornerstone of modern biotechnology, offering a comprehensive and high-resolution view of gene expression that enables the discovery of novel transcripts across diverse biological systems. Its applications extend beyond basic transcriptomics, providing powerful tools for uncovering molecular mechanisms underlying disease, environmental responses, and chemical toxicity. In biotechnology and biomedical research, RNA-seq facilitates the identification of regulatory networks and biomarkers that inform therapeutic development, risk assessment, and precision medicine.
