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Sangon Biotech codon optimized genes
Codon Optimized Genes, supplied by Sangon Biotech, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/codon/codon+optimized/pmc12905779-51-1-10
Average 86 stars, based on 1 article reviews
codon optimized genes - by Bioz Stars, 2026-09
86/100 stars

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Related Articles

Synthesized:

Article Title: Systematic engineering of Escherichia coli for biosynthesis of 3-hydroxypropionic acid from glucose and malonate
Article Snippet: .. The codon-optimized fapR gene was synthesized by Sangon Biotech (Shanghai, China) [ ], yielding the plasmid pUC57- fapR . ..

Article Title: Systematic engineering of Escherichia coli for biosynthesis of 3-hydroxypropionic acid from glucose and malonate.
Article Snippet: .. The codon-optimized fapR gene was synthesized by Sangon Biotech (Shanghai, China) [18], yielding the plasmid pUC57-fapR. ..

Article Title: Improvement of D-Allulose Biocatalysis from D-Glucose in Engineered Escherichia coli by Enhancing Glucose Isomerase Expression and Substrate Supply
Article Snippet: .. All six sequences underwent codon optimization and were subsequently synthesized by Sangon Biotech (Shanghai, China). ..

Article Title: De novo biosynthesis of eriocitrin in Saccharomyces cerevisiae through deep learning-guided enzyme screening and systematic metabolic engineering
Article Snippet: Tryptone and Yeast Extract were obtained from Oxoid (Hampshire, UK). .. All codon-optimized genes of plant origin were chemically synthesized by Sangon Biotech (Shanghai, China) and are listed in (codon-optimized exogenous gene sequences are listed in ). .. All primers were synthesized by Sangon Biotech (Shanghai, China); see for details.

Article Title: Beyond Ribosomal Mutations: Identification of MPN_080 as a Novel ATPase-Dependent Determinant of Macrolide Resistance in Mycoplasma pneumoniae .
Article Snippet: .. A codon-optimized MPN_080 gene from M. pneumoniae strain RC267 and M129 were synthesized by Sangon Biotech (Shanghai, China) and cloned into the pET-32a(+) vector. ..

Plasmid Preparation:

Article Title: Systematic engineering of Escherichia coli for biosynthesis of 3-hydroxypropionic acid from glucose and malonate
Article Snippet: .. The codon-optimized fapR gene was synthesized by Sangon Biotech (Shanghai, China) [ ], yielding the plasmid pUC57- fapR . ..

Article Title: Systematic engineering of Escherichia coli for biosynthesis of 3-hydroxypropionic acid from glucose and malonate.
Article Snippet: .. The codon-optimized fapR gene was synthesized by Sangon Biotech (Shanghai, China) [18], yielding the plasmid pUC57-fapR. ..

other:

Article Title: Engineered romidepsin biosynthetic pathways in Escherichia coli Nissle 1917 improve the efficacy of bacteria-mediated cancer therapy.
Article Snippet: The original core genes and the codon-optimized core genes required for FK228 biosynthesis were partially synthesized by Genewiz, Sangon Biotech, and Beijing Genomics institution.

Article Title: Engineered romidepsin biosynthetic pathways in Escherichia coli Nissle 1917 improve the efficacy of bacteria-mediated cancer therapy.
Article Snippet: Strains, culture conditions, and plasmids S1 and S3 Tables detail the bacterial strains, plasmids, and primers employed in this study, with gene synthesis and codon optimization performed by Sangon Biotech.

Article Title: Engineered romidepsin biosynthetic pathways in Escherichia coli Nissle 1917 improve the efficacy of bacteria-mediated cancer therapy
Article Snippet: and detail the bacterial strains, plasmids, and primers employed in this study, with gene synthesis and codon optimization performed by Sangon Biotech.

Clone Assay:

Article Title: Beyond Ribosomal Mutations: Identification of MPN_080 as a Novel ATPase-Dependent Determinant of Macrolide Resistance in Mycoplasma pneumoniae .
Article Snippet: .. A codon-optimized MPN_080 gene from M. pneumoniae strain RC267 and M129 were synthesized by Sangon Biotech (Shanghai, China) and cloned into the pET-32a(+) vector. ..



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Twist Bioscience e coli codon optimised amenc spycatcher am s sequence
( a ) Schematics depicting ( left ) <t>the</t> <t>Am-S</t> genetic construct encoding the AmEnc subunit (grey) fused at the C-terminus to SpyCatcher (orange) via a linker comprising a His-tag (green) flanked by flexible (GGGS) n spacers (white); and ( right ) covalent coupling of SpyTagged antigens to the surface of the self-assembled Am-S scaffold, generating an antigen-displaying nanovaccine. ( b ) PAGE analysis of Am-S purified by sequential IMAC and SEC: ( left ) SDS-PAGE showing the Am-S subunit (∼44 kDa); ( right ) native PAGE verifying nanocage assembly. ( c ) DLS analysis demonstrating monodisperse Am-S nanocages with a mean hydrodynamic diameter of 36.4 ± 9.4 nm. ( d ) ( left ) Cryo-EM micrograph showing Am-S self-assembly into nanocage structures (scale bar = 100 nm) ( right ) 3D reconstruction at 2.58 Å resolution (external view) confirming high-fidelity assembly into 21.2 nm particles with T = 1 icosahedral symmetry. ( e–j ) Storage stability of Am-S. ( e ) Solubility after 1 and 4 freeze-thaw cycles; untreated material (0) was defined as 100% soluble. ( f ) DLS analysis of samples in (e). ( g ) Solubility after storage at the indicated temperatures for 6 weeks; samples stored at −80 °C were defined as 100% soluble. ( h ) DLS analysis of samples in (g). ( i ) Solubility before and after lyophilisation and storage at ambient temperature for 1 day; pre-lyophilisation material was defined as 100% soluble. ( j ) DLS analysis of samples in (i). Soluble Am-S fractions were isolated by centrifugation and quantified by SDS-PAGE densitometry (mean ± SD, n = 3).
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( a ) Schematics depicting ( left ) the Am-S genetic construct encoding the AmEnc subunit (grey) fused at the C-terminus to SpyCatcher (orange) via a linker comprising a His-tag (green) flanked by flexible (GGGS) n spacers (white); and ( right ) covalent coupling of SpyTagged antigens to the surface of the self-assembled Am-S scaffold, generating an antigen-displaying nanovaccine. ( b ) PAGE analysis of Am-S purified by sequential IMAC and SEC: ( left ) SDS-PAGE showing the Am-S subunit (∼44 kDa); ( right ) native PAGE verifying nanocage assembly. ( c ) DLS analysis demonstrating monodisperse Am-S nanocages with a mean hydrodynamic diameter of 36.4 ± 9.4 nm. ( d ) ( left ) Cryo-EM micrograph showing Am-S self-assembly into nanocage structures (scale bar = 100 nm) ( right ) 3D reconstruction at 2.58 Å resolution (external view) confirming high-fidelity assembly into 21.2 nm particles with T = 1 icosahedral symmetry. ( e–j ) Storage stability of Am-S. ( e ) Solubility after 1 and 4 freeze-thaw cycles; untreated material (0) was defined as 100% soluble. ( f ) DLS analysis of samples in (e). ( g ) Solubility after storage at the indicated temperatures for 6 weeks; samples stored at −80 °C were defined as 100% soluble. ( h ) DLS analysis of samples in (g). ( i ) Solubility before and after lyophilisation and storage at ambient temperature for 1 day; pre-lyophilisation material was defined as 100% soluble. ( j ) DLS analysis of samples in (i). Soluble Am-S fractions were isolated by centrifugation and quantified by SDS-PAGE densitometry (mean ± SD, n = 3).

Journal: bioRxiv

Article Title: Engineering a Novel Bacterial Encapsulin for Programmable Surface Functionalization: From Single-Target to Mosaic Nanovaccines

doi: 10.64898/2026.06.01.729406

Figure Lengend Snippet: ( a ) Schematics depicting ( left ) the Am-S genetic construct encoding the AmEnc subunit (grey) fused at the C-terminus to SpyCatcher (orange) via a linker comprising a His-tag (green) flanked by flexible (GGGS) n spacers (white); and ( right ) covalent coupling of SpyTagged antigens to the surface of the self-assembled Am-S scaffold, generating an antigen-displaying nanovaccine. ( b ) PAGE analysis of Am-S purified by sequential IMAC and SEC: ( left ) SDS-PAGE showing the Am-S subunit (∼44 kDa); ( right ) native PAGE verifying nanocage assembly. ( c ) DLS analysis demonstrating monodisperse Am-S nanocages with a mean hydrodynamic diameter of 36.4 ± 9.4 nm. ( d ) ( left ) Cryo-EM micrograph showing Am-S self-assembly into nanocage structures (scale bar = 100 nm) ( right ) 3D reconstruction at 2.58 Å resolution (external view) confirming high-fidelity assembly into 21.2 nm particles with T = 1 icosahedral symmetry. ( e–j ) Storage stability of Am-S. ( e ) Solubility after 1 and 4 freeze-thaw cycles; untreated material (0) was defined as 100% soluble. ( f ) DLS analysis of samples in (e). ( g ) Solubility after storage at the indicated temperatures for 6 weeks; samples stored at −80 °C were defined as 100% soluble. ( h ) DLS analysis of samples in (g). ( i ) Solubility before and after lyophilisation and storage at ambient temperature for 1 day; pre-lyophilisation material was defined as 100% soluble. ( j ) DLS analysis of samples in (i). Soluble Am-S fractions were isolated by centrifugation and quantified by SDS-PAGE densitometry (mean ± SD, n = 3).

Article Snippet: The E. coli codon optimised AmEnc-SpyCatcher (Am-S) sequence ( Table S2 ) was synthesised by Twist Bioscience into the pET-24(+) expression vector and transformed into E. coli BL21(DE3) competent cells (New England Biolabs).

Techniques: Construct, Purification, SDS Page, Clear Native PAGE, Cryo-EM Sample Prep, Solubility, Isolation, Centrifugation

( a ) Schematic of peptide antigens with an N-terminal SpyTag (orange) linked via a flexible (GS)n spacer (black) to peptide antigens derived from pTau (S-pTau; green) or Aβ (S-Aβ; purple). ( b ) Conceptual illustration of unconjugated and conjugated Am-S, including the bare nanoscaffold (Am-S), monovalent nanocage formats bearing S-pTau (Am-S-pTau) or S-Aβ (Am-S-Aβ), and a multivalent “mosaic” nanocage bearing both antigens. ( c ) PAGE assessment of SpyTag/SpyCatcher-mediated conjugation, with ( left ) SDS-PAGE showing covalent coupling of antigen(s) to the Am-S subunit, and ( right ) non-denaturing native PAGE indicating antigen (co-)display on the assembled Am-S nanocage. ( d ) DLS characterisation of hydrodynamic diameter and dispersity of the (co-)conjugated nanocages. ( e ) Negatively stained TEM images of Am-S (orange), Am-S-pTau (green), Am-S-Aβ (purple), and mosaic (blue) nanocage formats; Scale bars = 200 nm.

Journal: bioRxiv

Article Title: Engineering a Novel Bacterial Encapsulin for Programmable Surface Functionalization: From Single-Target to Mosaic Nanovaccines

doi: 10.64898/2026.06.01.729406

Figure Lengend Snippet: ( a ) Schematic of peptide antigens with an N-terminal SpyTag (orange) linked via a flexible (GS)n spacer (black) to peptide antigens derived from pTau (S-pTau; green) or Aβ (S-Aβ; purple). ( b ) Conceptual illustration of unconjugated and conjugated Am-S, including the bare nanoscaffold (Am-S), monovalent nanocage formats bearing S-pTau (Am-S-pTau) or S-Aβ (Am-S-Aβ), and a multivalent “mosaic” nanocage bearing both antigens. ( c ) PAGE assessment of SpyTag/SpyCatcher-mediated conjugation, with ( left ) SDS-PAGE showing covalent coupling of antigen(s) to the Am-S subunit, and ( right ) non-denaturing native PAGE indicating antigen (co-)display on the assembled Am-S nanocage. ( d ) DLS characterisation of hydrodynamic diameter and dispersity of the (co-)conjugated nanocages. ( e ) Negatively stained TEM images of Am-S (orange), Am-S-pTau (green), Am-S-Aβ (purple), and mosaic (blue) nanocage formats; Scale bars = 200 nm.

Article Snippet: The E. coli codon optimised AmEnc-SpyCatcher (Am-S) sequence ( Table S2 ) was synthesised by Twist Bioscience into the pET-24(+) expression vector and transformed into E. coli BL21(DE3) competent cells (New England Biolabs).

Techniques: Derivative Assay, Conjugation Assay, SDS Page, Clear Native PAGE, Staining

( a ) Immunisation schedule for C57BL/6J mice ( n = 4 per group) with end-point sera collection. ( b ) ELISA measurement of anti-pTau total IgG levels in terminal sera from mice receiving Am-S-pTau and controls. ( c ) Body-weight change of mice over time-course in (b), expressed as normalised area under the curve (AUC). ( Right panel ) AddaVax™ and Alhydrogel®. ( d ) Immunisation and sera collection schedule for mice receiving Am-S-pTau formulated with ADV or ALH ( n = 4 per group). ( e ) Anti-pTau IgG titres in sera over time. Black arrows indicate immunization days. ( f ) Body-weight change over time in (e). Data are mean ± SD. ****P < 0.0001; ns, non-significant (> 0.05). Statistical analyses: one-way ANOVA with Tukey’s multiple comparisons for (b,c,f); two-way mixed-effects ANOVA with time and adjuvant as factors for (e).

Journal: bioRxiv

Article Title: Engineering a Novel Bacterial Encapsulin for Programmable Surface Functionalization: From Single-Target to Mosaic Nanovaccines

doi: 10.64898/2026.06.01.729406

Figure Lengend Snippet: ( a ) Immunisation schedule for C57BL/6J mice ( n = 4 per group) with end-point sera collection. ( b ) ELISA measurement of anti-pTau total IgG levels in terminal sera from mice receiving Am-S-pTau and controls. ( c ) Body-weight change of mice over time-course in (b), expressed as normalised area under the curve (AUC). ( Right panel ) AddaVax™ and Alhydrogel®. ( d ) Immunisation and sera collection schedule for mice receiving Am-S-pTau formulated with ADV or ALH ( n = 4 per group). ( e ) Anti-pTau IgG titres in sera over time. Black arrows indicate immunization days. ( f ) Body-weight change over time in (e). Data are mean ± SD. ****P < 0.0001; ns, non-significant (> 0.05). Statistical analyses: one-way ANOVA with Tukey’s multiple comparisons for (b,c,f); two-way mixed-effects ANOVA with time and adjuvant as factors for (e).

Article Snippet: The E. coli codon optimised AmEnc-SpyCatcher (Am-S) sequence ( Table S2 ) was synthesised by Twist Bioscience into the pET-24(+) expression vector and transformed into E. coli BL21(DE3) competent cells (New England Biolabs).

Techniques: Enzyme-linked Immunosorbent Assay, Adjuvant

Representative immunohistochemical staining of (Left panel) amygdala sections from tauopathy TAU58/2 mice with the corresponding region from wild-type mice controls ( n = 1); and (Right panel) hippocampal sections from amyloidogenic APP/PS1 mice with the corresponding region from wild-type controls ( n = 1). As indicated, ex vivo brain sections were incubated with sera from C57BL/6J mice immunised with single-targeting nanovaccines (Am-S-pTau or Am-S-Aβ), or dual-targeting mosaic or cocktail formulations. Positive control antibodies were included: PHF-1 that recognizes pTau (pSer396/404); or 6E10 that binds Aβ (residues 1-16/17). Pathology-bound IgG was detected using Alexa Fluor 488 (green) and Alexa Fluor 568 or 647 (orange). Cell nuclei were counterstained with DAPI (blue). Scale bars = 200 µm (TAU58/2); or 500 µm (APP/PS1) and 200 µm (zoomed-in region, APP-PS1).

Journal: bioRxiv

Article Title: Engineering a Novel Bacterial Encapsulin for Programmable Surface Functionalization: From Single-Target to Mosaic Nanovaccines

doi: 10.64898/2026.06.01.729406

Figure Lengend Snippet: Representative immunohistochemical staining of (Left panel) amygdala sections from tauopathy TAU58/2 mice with the corresponding region from wild-type mice controls ( n = 1); and (Right panel) hippocampal sections from amyloidogenic APP/PS1 mice with the corresponding region from wild-type controls ( n = 1). As indicated, ex vivo brain sections were incubated with sera from C57BL/6J mice immunised with single-targeting nanovaccines (Am-S-pTau or Am-S-Aβ), or dual-targeting mosaic or cocktail formulations. Positive control antibodies were included: PHF-1 that recognizes pTau (pSer396/404); or 6E10 that binds Aβ (residues 1-16/17). Pathology-bound IgG was detected using Alexa Fluor 488 (green) and Alexa Fluor 568 or 647 (orange). Cell nuclei were counterstained with DAPI (blue). Scale bars = 200 µm (TAU58/2); or 500 µm (APP/PS1) and 200 µm (zoomed-in region, APP-PS1).

Article Snippet: The E. coli codon optimised AmEnc-SpyCatcher (Am-S) sequence ( Table S2 ) was synthesised by Twist Bioscience into the pET-24(+) expression vector and transformed into E. coli BL21(DE3) competent cells (New England Biolabs).

Techniques: Immunohistochemical staining, Staining, Ex Vivo, Incubation, Positive Control