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1.
Molecules ; 29(9)2024 May 02.
Article in English | MEDLINE | ID: mdl-38731602

ABSTRACT

Diverse secondary metabolites in plants, with their rich biological activities, have long been important sources for human medicine, food additives, pesticides, etc. However, the large-scale cultivation of host plants consumes land resources and is susceptible to pest and disease problems. Additionally, the multi-step and demanding nature of chemical synthesis adds to production costs, limiting their widespread application. In vitro cultivation and the metabolic engineering of plants have significantly enhanced the synthesis of secondary metabolites with successful industrial production cases. As synthetic biology advances, more research is focusing on heterologous synthesis using microorganisms. This review provides a comprehensive comparison between these two chassis, evaluating their performance in the synthesis of various types of secondary metabolites from the perspectives of yield and strategies. It also discusses the challenges they face and offers insights into future efforts and directions.


Subject(s)
Metabolic Engineering , Plants , Secondary Metabolism , Plants/metabolism , Metabolic Engineering/methods , Synthetic Biology/methods
3.
Microb Cell Fact ; 23(1): 135, 2024 May 12.
Article in English | MEDLINE | ID: mdl-38735926

ABSTRACT

Biotin, serving as a coenzyme in carboxylation reactions, is a vital nutrient crucial for the natural growth, development, and overall well-being of both humans and animals. Consequently, biotin is widely utilized in various industries, including feed, food, and pharmaceuticals. Despite its potential advantages, the chemical synthesis of biotin for commercial production encounters environmental and safety challenges. The burgeoning field of synthetic biology now allows for the creation of microbial cell factories producing bio-based products, offering a cost-effective alternative to chemical synthesis for biotin production. This review outlines the pathway and regulatory mechanism involved in biotin biosynthesis. Then, the strategies to enhance biotin production through both traditional chemical mutagenesis and advanced metabolic engineering are discussed. Finally, the article explores the limitations and future prospects of microbial biotin production. This comprehensive review not only discusses strategies for biotin enhancement but also provides in-depth insights into systematic metabolic engineering approaches aimed at boosting biotin production.


Subject(s)
Biotin , Metabolic Engineering , Biotin/biosynthesis , Biotin/metabolism , Metabolic Engineering/methods , Synthetic Biology/methods
4.
ACS Synth Biol ; 13(5): 1467-1476, 2024 May 17.
Article in English | MEDLINE | ID: mdl-38696739

ABSTRACT

Optogenetics is a powerful tool for spatiotemporal control of gene expression. Several light-inducible gene regulators have been developed to function in bacteria, and these regulatory circuits have been ported to new host strains. Here, we developed and adapted a red-light-inducible transcription factor for Shewanella oneidensis. This regulatory circuit is based on the iLight optogenetic system, which controls gene expression using red light. A thermodynamic model and promoter engineering were used to adapt this system to achieve differential gene expression in light and dark conditions within a S. oneidensis host strain. We further improved the iLight optogenetic system by adding a repressor to invert the genetic circuit and activate gene expression under red light illumination. The inverted iLight genetic circuit was used to control extracellular electron transfer within S. oneidensis. The ability to use both red- and blue-light-induced optogenetic circuits simultaneously was also demonstrated. Our work expands the synthetic biology capabilities in S. oneidensis, which could facilitate future advances in applications with electrogenic bacteria.


Subject(s)
Light , Optogenetics , Promoter Regions, Genetic , Shewanella , Shewanella/genetics , Shewanella/metabolism , Optogenetics/methods , Electron Transport , Promoter Regions, Genetic/genetics , Gene Expression Regulation, Bacterial , Transcription Factors/metabolism , Transcription Factors/genetics , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Gene Regulatory Networks/genetics , Synthetic Biology/methods
5.
Nat Commun ; 15(1): 4057, 2024 May 14.
Article in English | MEDLINE | ID: mdl-38744910

ABSTRACT

With just four building blocks, low sequence information density, few functional groups, poor control over folding, and difficulties in forming compact folds, natural DNA and RNA have been disappointing platforms from which to evolve receptors, ligands, and catalysts. Accordingly, synthetic biology has created "artificially expanded genetic information systems" (AEGIS) to add nucleotides, functionality, and information density. With the expected improvements seen in AegisBodies and AegisZymes, the task for synthetic biologists shifts to developing for expanded DNA the same analytical tools available to natural DNA. Here we report one of these, an enzyme-assisted sequencing of expanded genetic alphabet (ESEGA) method to sequence six-letter AEGIS DNA. We show how ESEGA analyses this DNA at single base resolution, and applies it to optimized conditions for six-nucleotide PCR, assessing the fidelity of various DNA polymerases, and extending this to AEGIS components with functional groups. This supports the renewed exploitation of expanded DNA alphabets in biotechnology.


Subject(s)
DNA , High-Throughput Nucleotide Sequencing , High-Throughput Nucleotide Sequencing/methods , DNA/genetics , DNA/metabolism , Synthetic Biology/methods , DNA-Directed DNA Polymerase/metabolism , DNA-Directed DNA Polymerase/genetics , Polymerase Chain Reaction/methods , Base Sequence , Sequence Analysis, DNA/methods
6.
Commun Biol ; 7(1): 628, 2024 May 24.
Article in English | MEDLINE | ID: mdl-38789612

ABSTRACT

Generating genetic diversity lies at the heart of directed evolution which has been widely used to engineer genetic parts and gene circuits in synthetic biology. With the ever-expanding application of directed evolution, different approaches of generating genetic diversity are required to enrich the traditional toolbox. Here we show in vitro generation of genetic diversity for directed evolution by error-prone artificial DNA synthesis (epADS). This approach comprises a three-step process which incorporates base errors randomly generated during chemical synthesis of oligonucleotides under specific conditions into the target DNA. Through this method, 200 ~ 4000 folds of diversification in fluorescent strength have been achieved in genes encoding fluorescent proteins. EpADS has also been successfully used to diversify regulatory genetic parts, synthetic gene circuits and even increase microbial tolerance to carbenicillin in a short time period. EpADS would be an alternative tool for directed evolution which may have useful applications in synthetic biology.


Subject(s)
DNA , Directed Molecular Evolution , Genetic Variation , Directed Molecular Evolution/methods , DNA/genetics , Synthetic Biology/methods , Oligonucleotides/genetics , Escherichia coli/genetics , Escherichia coli/metabolism
7.
Lab Chip ; 24(11): 2834-2860, 2024 May 28.
Article in English | MEDLINE | ID: mdl-38712893

ABSTRACT

Synthetic biology is the design and modification of biological systems for specific functions, integrating several disciplines like engineering, genetics, and computer science. The field of synthetic biology is to understand biological processes within host organisms through the manipulation and regulation of their genetic pathways and the addition of biocontrol circuits to enhance their production capabilities. This pursuit serves to address global challenges spanning diverse domains that are difficult to tackle through conventional routes of production. Despite its impact, achieving precise, dynamic, and high-throughput manipulation of biological processes is still challenging. Microfluidics offers a solution to those challenges, enabling controlled fluid handling at the microscale, offering lower reagent consumption, faster analysis of biochemical reactions, automation, and high throughput screening. In this review, we diverge from conventional focus on automating the synthetic biology design-build-test-learn cycle, and instead, focus on microfluidic platforms and their role in advancing synthetic biology through its integration with host organisms - bacterial cells, yeast, fungi, animal cells - and cell-free systems. The review illustrates how microfluidic devices have been instrumental in understanding biological systems by showcasing microfluidics as an essential tool to create synthetic genetic circuits, pathways, and organisms within controlled environments. In conclusion, we show how microfluidics expedite synthetic biology applications across diverse domains including but not limited to personalized medicine, bioenergy, and agriculture.


Subject(s)
Synthetic Biology , Animals , Microfluidic Analytical Techniques/instrumentation , Lab-On-A-Chip Devices , Humans
8.
World J Microbiol Biotechnol ; 40(6): 192, 2024 May 06.
Article in English | MEDLINE | ID: mdl-38709285

ABSTRACT

The global concern over arsenic contamination in water due to its natural occurrence and human activities has led to the development of innovative solutions for its detection and remediation. Microbial metabolism and mobilization play crucial roles in the global cycle of arsenic. Many microbial arsenic-resistance systems, especially the ars operons, prevalent in bacterial plasmids and genomes, play vital roles in arsenic resistance and are utilized as templates for designing synthetic bacteria. This review novelty focuses on the use of these tailored bacteria, engineered with ars operons, for arsenic biosensing and bioremediation. We discuss the advantages and disadvantages of using synthetic bacteria in arsenic pollution treatment. We highlight the importance of genetic circuit design, reporter development, and chassis cell optimization to improve biosensors' performance. Bacterial arsenic resistances involving several processes, such as uptake, transformation, and methylation, engineered in customized bacteria have been summarized for arsenic bioaccumulation, detoxification, and biosorption. In this review, we present recent insights on the use of synthetic bacteria designed with ars operons for developing tailored bacteria for controlling arsenic pollution, offering a promising avenue for future research and application in environmental protection.


Subject(s)
Arsenic , Bacteria , Biodegradation, Environmental , Biosensing Techniques , Operon , Biosensing Techniques/methods , Arsenic/metabolism , Bacteria/genetics , Bacteria/metabolism , Synthetic Biology/methods , Genetic Engineering
9.
PLoS Biol ; 22(5): e3002594, 2024 May.
Article in English | MEDLINE | ID: mdl-38754362

ABSTRACT

The standard genetic code defines the rules of translation for nearly every life form on Earth. It also determines the amino acid changes accessible via single-nucleotide mutations, thus influencing protein evolvability-the ability of mutation to bring forth adaptive variation in protein function. One of the most striking features of the standard genetic code is its robustness to mutation, yet it remains an open question whether such robustness facilitates or frustrates protein evolvability. To answer this question, we use data from massively parallel sequence-to-function assays to construct and analyze 6 empirical adaptive landscapes under hundreds of thousands of rewired genetic codes, including those of codon compression schemes relevant to protein engineering and synthetic biology. We find that robust genetic codes tend to enhance protein evolvability by rendering smooth adaptive landscapes with few peaks, which are readily accessible from throughout sequence space. However, the standard genetic code is rarely exceptional in this regard, because many alternative codes render smoother landscapes than the standard code. By constructing low-dimensional visualizations of these landscapes, which each comprise more than 16 million mRNA sequences, we show that such alternative codes radically alter the topological features of the network of high-fitness genotypes. Whereas the genetic codes that optimize evolvability depend to some extent on the detailed relationship between amino acid sequence and protein function, we also uncover general design principles for engineering nonstandard genetic codes for enhanced and diminished evolvability, which may facilitate directed protein evolution experiments and the bio-containment of synthetic organisms, respectively.


Subject(s)
Evolution, Molecular , Genetic Code , Proteins , Proteins/genetics , Proteins/metabolism , Mutation/genetics , Codon/genetics , Models, Genetic , Synthetic Biology/methods , Protein Biosynthesis , Protein Engineering/methods
10.
Nat Commun ; 15(1): 4635, 2024 May 31.
Article in English | MEDLINE | ID: mdl-38821953

ABSTRACT

Cell-free protein expression (CFE) systems have emerged as a critical platform for synthetic biology research. The vectors for protein expression in CFE systems mainly rely on double-stranded DNA and single-stranded RNA for transcription and translation processing. Here, we introduce a programmable vector - circular single-stranded DNA (CssDNA), which is shown to be processed by DNA and RNA polymerases for gene expression in a yeast-based CFE system. CssDNA is already widely employed in DNA nanotechnology due to its addressability and programmability. To apply above methods in the context of synthetic biology, CssDNA can not only be engineered for gene regulation via the different pathways of sense CssDNA and antisense CssDNA, but also be constructed into several gene regulatory logic gates in CFE systems. Our findings advance the understanding of how CssDNA can be utilized in gene expression and gene regulation, and thus enrich the synthetic biology toolbox.


Subject(s)
Cell-Free System , DNA, Circular , DNA, Single-Stranded , Genetic Vectors , Saccharomyces cerevisiae , Synthetic Biology , DNA, Single-Stranded/metabolism , DNA, Single-Stranded/genetics , Synthetic Biology/methods , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , DNA, Circular/genetics , DNA, Circular/metabolism , Genetic Vectors/metabolism , Genetic Vectors/genetics , Gene Expression Regulation , DNA-Directed RNA Polymerases/metabolism , DNA-Directed RNA Polymerases/genetics
11.
Med Sci (Paris) ; 40(5): 437-444, 2024 May.
Article in French | MEDLINE | ID: mdl-38819279

ABSTRACT

Recent advances in synthetic biology have paved the way for new cellular therapies, using cells capable of autonomously treating chronic diseases. These cells integrate a set of genes functioning in a closed-loop synthetic circuit, delivering a therapeutic effector in response to a specific pathological signal. While promising in mice, these therapies face clinical challenges related to safety and feasibility of in vivo implementation. The latest generations of synthetic circuits aim to address these issues through advanced bioengineering strategies outlined in this article.


Title: Les circuits synthétiques de gènes fonctionnant en boucle fermée - Concept et dernières avancées. Abstract: Les progrès récents de la biologie synthétique ont ouvert la voie à de nouvelles thérapies fondées sur des cellules rendues aptes à produire de manière autonome des substrats afin de traiter des maladies chroniques. Ces cellules modifiées intègrent un ensemble de gènes fonctionnant en circuit synthétique à boucle fermée, qui permettent de délivrer un effecteur thérapeutique en réponse à un signal pathologique déterminé. Bien que prometteuses chez la souris, ces thérapies font face à des obstacles cliniques liés à leur sûreté et à leur implémentation in vivo. Les dernières générations de circuits synthétiques cherchent à résoudre ces problèmes grâce à des stratégies de bioingénierie avancées, que nous présentons dans cet article.


Subject(s)
Cell- and Tissue-Based Therapy , Gene Regulatory Networks , Genes, Synthetic , Synthetic Biology , Humans , Animals , Synthetic Biology/methods , Synthetic Biology/trends , Cell- and Tissue-Based Therapy/methods , Cell- and Tissue-Based Therapy/trends , Mice , Genetic Therapy/methods , Genetic Therapy/trends
12.
ACS Synth Biol ; 13(5): 1394-1399, 2024 May 17.
Article in English | MEDLINE | ID: mdl-38757697

ABSTRACT

Substantial improvements in DNA sequencing and synthesis technologies and increased understanding of genome biology have empowered the development of synthetic genomics. The ability to design and construct engineered living cells boosted up by synthetic chromosomes provides opportunities to tackle enormous current and future challenges faced by humanity and the planet. Here we review the progresses, considerations, challenges, and future direction of the "design-build-test-learn" cycle used in synthetic genomics. We also discuss future applications enabled by synthetic genomics as this emerging field shapes and revolutionizes biomanufacturing and biomedicine.


Subject(s)
Genomics , Synthetic Biology , Genomics/methods , Synthetic Biology/methods , Humans , Genetic Engineering/methods
13.
Adv Protein Chem Struct Biol ; 140: 91-156, 2024.
Article in English | MEDLINE | ID: mdl-38762281

ABSTRACT

This book chapter highlights a comprehensive exploration of the transformative innovations in the field of cancer immunotherapy. CAR (Chimeric Antigen Receptor) T-cell therapy represents a groundbreaking approach to treat cancer by reprogramming a patient immune cells to recognize and destroy cancer cells. This chapter underscores the critical role of synthetic biology in enhancing the safety and effectiveness of CAR T-cell therapies. It begins by emphasizing the growing importance of personalized medicine in cancer treatment, emphasizing the shift from one-size-fits-all approaches to patient-specific solutions. Synthetic biology, a multidisciplinary field, has been instrumental in customizing CAR T-cell therapies, allowing for fine-tuned precision and minimizing unwanted side effects. The chapter highlights recent advances in gene editing, synthetic gene circuits, and molecular engineering, showcasing how these technologies are optimizing CAR T-cell function. In summary, this book chapter sheds light on the remarkable progress made in the development of CAR T-cell therapies using synthetic biology, providing hope for cancer patients and hinting at a future where highly personalized and effective cancer treatments are the norm.


Subject(s)
Neoplasms , Receptors, Chimeric Antigen , Synthetic Biology , Humans , Neoplasms/therapy , Neoplasms/immunology , Neoplasms/genetics , Receptors, Chimeric Antigen/immunology , Receptors, Chimeric Antigen/genetics , Immunotherapy, Adoptive/methods , T-Lymphocytes/immunology , T-Lymphocytes/metabolism , Gene Editing , Cell Engineering
14.
Biotechnol Adv ; 73: 108355, 2024.
Article in English | MEDLINE | ID: mdl-38588907

ABSTRACT

Membraneless organelles (MLOs) formed by liquid-liquid phase separation (LLPS) have been extensively studied due to their spatiotemporal control of biochemical and cellular processes in living cells. These findings have provided valuable insights into the physicochemical principles underlying the formation and functionalization of biomolecular condensates, which paves the way for the development of versatile phase-separating systems capable of addressing a variety of application scenarios. Here, we highlight the potential of constructing synthetic MLOs with programmable and functional properties. Notably, we organize how these synthetic membraneless compartments have been capitalized to manipulate enzymatic activities and metabolic reactions. The aim of this review is to inspire readerships to deeply comprehend the widespread roles of synthetic MLOs in the regulation enzymatic reactions and control of metabolic processes, and to encourage the rational design of controllable and functional membraneless compartments for a broad range of bioengineering applications.


Subject(s)
Organelles , Organelles/metabolism , Synthetic Biology/methods , Biomolecular Condensates/chemistry , Bioengineering , Humans
15.
Nat Commun ; 15(1): 3640, 2024 Apr 29.
Article in English | MEDLINE | ID: mdl-38684714

ABSTRACT

Careful consideration of how we approach design is crucial to all areas of biotechnology. However, choosing or developing an effective design methodology is not always easy as biology, unlike most areas of engineering, is able to adapt and evolve. Here, we put forward that design and evolution follow a similar cyclic process and therefore all design methods, including traditional design, directed evolution, and even random trial and error, exist within an evolutionary design spectrum. This contrasts with conventional views that often place these methods at odds and provides a valuable framework for unifying engineering approaches for challenging biological design problems.


Subject(s)
Directed Molecular Evolution , Bioengineering/methods , Biological Evolution , Biotechnology/methods , Directed Molecular Evolution/methods , Synthetic Biology/methods
16.
ACS Synth Biol ; 13(5): 1513-1522, 2024 May 17.
Article in English | MEDLINE | ID: mdl-38613497

ABSTRACT

Computer-aided promoter design is a major development trend in synthetic promoter engineering. Various deep learning models have been used to evaluate or screen synthetic promoters, but there have been few works on de novo promoter design. To explore the potential ability of generative models in promoter design, we established a diffusion-based generative model for promoter design in Escherichia coli. The model was completely driven by sequence data and could study the essential characteristics of natural promoters, thus generating synthetic promoters similar to natural promoters in structure and component. We also improved the calculation method of FID indicator, using a convolution layer to extract the feature matrix of the promoter sequence instead. As a result, we got an FID equal to 1.37, which meant synthetic promoters have a distribution similar to that of natural ones. Our work provides a fresh approach to de novo promoter design, indicating that a completely data-driven generative model is feasible for promoter design.


Subject(s)
Escherichia coli , Promoter Regions, Genetic , Promoter Regions, Genetic/genetics , Escherichia coli/genetics , Synthetic Biology/methods , Genetic Engineering/methods , Deep Learning , Diffusion
17.
Cell Rep Methods ; 4(4): 100761, 2024 Apr 22.
Article in English | MEDLINE | ID: mdl-38653205

ABSTRACT

The international Synthetic Yeast Project (Sc2.0) aims to construct the first synthetic designer eukaryote genome. Over the past few years, the Sc2.0 consortium has achieved several significant milestones by synthesizing and characterizing all 16 nuclear chromosomes of the yeast Saccharomyces cerevisiae, as well as a 17thde novo neochromosome containing all nuclear tRNA genes. In this commentary, we discuss the recent technological advances achieved in this project and provide a perspective on how they will impact the emerging field of synthetic genomics in the future.


Subject(s)
Genome, Fungal , Saccharomyces cerevisiae , Genetic Engineering/methods , Genome, Fungal/genetics , Genomics/methods , Saccharomyces cerevisiae/genetics , Synthetic Biology/methods
18.
Microbiologyopen ; 13(2): e1406, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38556942

ABSTRACT

Microbial products are essential for developing various therapeutic agents, including antibiotics, anticancer drugs, vaccines, and therapeutic enzymes. Genetic engineering techniques, functional genomics, and synthetic biology unlock previously uncharacterized natural products. This review highlights major advances in microbial biotechnology, focusing on gene-based technologies for medical applications.


Subject(s)
Biotechnology , Genetic Engineering , Biotechnology/methods , Genetic Techniques , Genomics , Synthetic Biology
19.
Sheng Wu Gong Cheng Xue Bao ; 40(4): 1251-1260, 2024 Apr 25.
Article in Chinese | MEDLINE | ID: mdl-38658161

ABSTRACT

To attain the aims of high-quality agricultural development, the Ministry of Education is in the process of establishing master's and doctoral programs in biological breeding engineering at universities with a strong agricultural focus. These programs will incorporate a dedicated course on agricultural synthetic biology, aiming to equip graduate students with the ability to tackle critical scientific and technological challenges in biological breeding while fostering innovations in agriculture. The course places emphasis on interdisciplinary collaboration, innovation, and the practical application of new advancement, ensuring compatibility with both domestic and international agricultural standards in the future.


Subject(s)
Agriculture , Synthetic Biology , Synthetic Biology/education , Education, Graduate , Crops, Agricultural/growth & development
20.
Biochemistry (Mosc) ; 89(Suppl 1): S278-S289, 2024 Jan.
Article in English | MEDLINE | ID: mdl-38621756

ABSTRACT

To date synthetic biology approaches involving creation of functional genetic modules are used in a wide range of organisms. In plants, such approaches are used both for research in the field of functional genomics and to increase the yield of agricultural crops. Of particular interest are methods that allow controlling genetic apparatus of the plants at post-translational level, which allow reducing non-targeted effects from interference with the plant genome. This review discusses recent advances in the plant synthetic biology for regulation of the plant metabolism at posttranslational level and highlights their future directions.


Subject(s)
Crops, Agricultural , Synthetic Biology , Crops, Agricultural/genetics , Crops, Agricultural/metabolism , Genomics
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