Sequence Search | Advanced Search | SPARQL
Showing 551 - 600 of 694 result(s)
Previous 7 8 9 10 11 12 13 14 Next



Public
BBa_K590018
BBa_K590018 Version 1 (Component)
mamMNOPA in vector pGA3K3
Public
BBa_K590019
BBa_K590019 Version 1 (Component)
mamQRBSTUV in vector pGA3K3
Public
BBa_K549021
BBa_K549021 Version 1 (Component)
pabA with Freiburg-standard in pSB1C3
Public
BBa_K549025
BBa_K549025 Version 1 (Component)
petE2 in Freiburg-standard
Public
APEV
BBa_K596004 Version 1 (Component)
Algae Protein Expression Vector
Public
BBa_K541800
BBa_K541800 Version 1 (Component)
B.subtilis and E.coli Episomal Shuttle Vector with Consitutive RFP to express in E.coli
Public
pTG262-BB
BBa_I742123 Version 1 (Component)
Multi-host vector pTG262 converted to BioBrick vector
Public
BBa_K541915
BBa_K541915 Version 1 (Component)
Multi-host vector pTG262 converted to BioBrick vector wtih LALF protein and SacB signal peptide
Public
BBa_K541715
BBa_K541715 Version 1 (Component)
Multi-host vector pTG262 converted to BioBrick vector wtih LALF protein and SacB signal peptide
Public
K592200
BBa_K592200 Version 1 (Component)
Low to medium copy BioBrick standard vector
Public
BBa_K541815
BBa_K541815 Version 1 (Component)
B.subtilis and E.coli Episomal Shuttle Vector with LALF and SacB signal peptide
Public
BBa_K541925
BBa_K541925 Version 1 (Component)
Multi-host vector pTG262 converted to BioBrick vector wtih LALF protein and LipA signal peptide
Public
BBa_K592201
BBa_K592201 Version 1 (Component)
Low to medium copy Lambda Red recombineering compatible plasmid
Public
K592202
BBa_K592202 Version 1 (Component)
Low to medium copy Lambda Red recombineering compatible plasmid
Public
BBa_K530028
BBa_K530028 Version 1 (Component)
pRSBB403 HIS3 Integrating Yeast Shuttle Vector
Public
BBa_K530029
BBa_K530029 Version 1 (Component)
pRSBB404 TRP1 Integrating Yeast Shuttle Vector
Public
BBa_K530030
BBa_K530030 Version 1 (Component)
pRSBB405 LEU2 Integrating Yeast Shuttle Vector
Public
BBa_K530031
BBa_K530031 Version 1 (Component)
pRSBB406 URA3 Integrating Yeast Shuttle Vector
Public
BBa_K530032
BBa_K530032 Version 1 (Component)
pRSBB413 HIS3 CEN/ARS Yeast Shuttle Vector
Public
BBa_K530033
BBa_K530033 Version 1 (Component)
pRSBB414 TRP1 CEN/ARS Yeast Shuttle Vector
Public
BBa_K530034
BBa_K530034 Version 1 (Component)
pRSBB415 LEU2 CEN/ARS Yeast Shuttle Vector
Public
BBa_K530035
BBa_K530035 Version 1 (Component)
pRSBB416 URA3 CEN/ARS Yeast Shuttle Vector
Public
BBa_K530036
BBa_K530036 Version 1 (Component)
pRSBB423 HIS3 2Micron Episomal Yeast Shuttle Vector
Public
BBa_K530037
BBa_K530037 Version 1 (Component)
pRSBB424 TRP1 2Micron Episomal Yeast Shuttle Vector
Public
BBa_K530038
BBa_K530038 Version 1 (Component)
pRSBB425 LEU2 2Micron Episomal Yeast Shuttle Vector
Public
BBa_K530039
BBa_K530039 Version 1 (Component)
pRSBB426 URA3 2Micron Episomal Yeast Shuttle Vector
Public
BBa_K535007
BBa_K535007 Version 1 (Component)
pBBR1MCS-5 -> broad-host-range cloning vector
Public
Biosurfact
BBa_K653000 Version 1 (Component)
Re-designing "The Biosurfactator" The first Central American BioBrick
Public
BBa_K896003
BBa_K896003 Version 1 (Component)
Sulfide quinone reductase(SQR) on neutral site 2 vector
Public
BBa_K950010
BBa_K950010 Version 1 (Component)
pRS315 shuttle vector
Public
BBa_K950011
BBa_K950011 Version 1 (Component)
pRS316 shuttle vector
Public
BBa_K823038
BBa_K823038 Version 1 (Component)
Strep-tag (Freiburg standard+RBS)
Public
BBa_K823039
BBa_K823039 Version 1 (Component)
gfpmut1 (B. subtilis optimized + Freiburg standard)
Public
BBa_J72202
BBa_J72202 Version 1 (Component)
ampicillin resistant p15A vector
Public
BBa_J72203
BBa_J72203 Version 1 (Component)
kanamycin resistant split R6K vector
Public
BBa_J72204
BBa_J72204 Version 1 (Component)
ampicillin resistant split R6K vector w/ O16 HAs and FRT-Kan-FRT
Public
BBa_J72205
BBa_J72205 Version 1 (Component)
ampicillin resistant split ColE2 vector
Public
BBa_J72206
BBa_J72206 Version 1 (Component)
ampicillin resistant split R6K vector
Public
BBa_J72207
BBa_J72207 Version 1 (Component)
ampicillin resistant pUC vector
Public
BBa_J72209
BBa_J72209 Version 1 (Component)
kanamycin + ampicillin resistant p15A vector for 2ab assembly
Public
BBa_J72211
BBa_J72211 Version 1 (Component)
ampicillin resistant p15A vector with dapD
Public
BBa_J72212
BBa_J72212 Version 1 (Component)
spectinomycin resistant pUC vector
Public
BBa_K812000
BBa_K812000 Version 1 (Component)
Biobricked pCS2+ plasmid for frogs and chicken
Public
BBa_K812001
BBa_K812001 Version 1 (Component)
Biobricked pSC2+ plasmid with pElastase promoter for frog use
Public
CBDcex
BBa_K863101 Version 1 (Component)
Cellulose binding Domain of Cellulomonas Fimi Exoglucanse (Freiburg-Standard)
Public
CBDclos
BBa_K863111 Version 1 (Component)
Cellulose binding domain of C. cellulovorans cellulose binding protein gene (Freiburg-Standard)
Public
BBa_J72218
BBa_J72218 Version 1 (Component)
kanamycin resistant p15A vector
Public
CBDcex(T7)
BBa_K863102 Version 1 (Component)
Cellulose binding Domain of C. Fimi Exoglucanase with T7, RBS, GS-Linker (Freiburg-Standard)
Public
linker
BBa_K157009 Version 1 (Component)
Split fluorophore linker; Freiburg standard
Public
SEGA
SEGA_collection Version 1 (Collection)
In the Standardized Genome Architecture (SEGA), genomic integration of DNA fragments is enabled by λ-Red recombineering and so-called landing pads that are a common concept in synthetic biology and typically contain features that i) enable insertion of additional genetic elements and ii) provide well-characterized functional parts such as promoters and genes, and iii) provides insulation against genome context-dependent effects. The SEGA landing pads allow for reusable homology regions and time-efficient construction of parallel genetic designs with a minimal number of reagents and handling steps. SEGA bricks, typically synthetic DNA or PCR fragments, are integrated on the genome simply by combining the two reagents (i.e. competent cells and DNA), followed by incubation steps, and successful recombinants are identified by visual inspection on agar plates. The design of the SEGA standard was heavily influenced by the Standard European Vector Architecture (SEVA). SEGA landing pads typically hosts two major genetic “control elements” that influence gene expression on the transcriptional (C1), and translational (C2) level. Furthermore, landing pads contain gadgets such as selection and counterselection markers.
Showing 551 - 600 of 694 result(s)
Previous 7 8 9 10 11 12 13 14 Next