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Showing 5801 - 5829 of 5829 result(s)
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Public
iGEM 2018 Distribution Plate 3 Well 11G
iGEM_2018_Plate3_Well11G Version 1 (Collection)

Public
iGEM 2018 Distribution Plate 3 Well 24G
iGEM_2018_Plate3_Well24G Version 1 (Collection)

Public
iGEM 2018 Distribution Plate 3 Well 19A
iGEM_2018_Plate3_Well19A Version 1 (Collection)

Public
iGEM 2018 Distribution Plate 3 Well 8A
iGEM_2018_Plate3_Well8A Version 1 (Collection)

Public
iGEM 2018 Distribution Plate 3 Well 21F
iGEM_2018_Plate3_Well21F Version 1 (Collection)

Public
iGEM 2018 Distribution Plate 3 Well 10G
iGEM_2018_Plate3_Well10G Version 1 (Collection)

Public
iGEM 2018 Distribution Plate 3 Well 9P
iGEM_2018_Plate3_Well9P Version 1 (Collection)

Public
iGEM 2018 Distribution Plate 3 Well 12I
iGEM_2018_Plate3_Well12I Version 1 (Collection)

Public
iGEM 2018 Distribution Plate 3 Well 2B
iGEM_2018_Plate3_Well2B Version 1 (Collection)

Public
iGEM 2018 Distribution Plate 3 Well 15N
iGEM_2018_Plate3_Well15N Version 1 (Collection)

Public
iGEM 2018 Distribution Plate 3 Well 7B
iGEM_2018_Plate3_Well7B Version 1 (Collection)

Public
iGEM 2018 Distribution Plate 3 Well 18F
iGEM_2018_Plate3_Well18F Version 1 (Collection)

Public
iGEM 2018 Distribution Plate 3 Well 18I
iGEM_2018_Plate3_Well18I Version 1 (Collection)

Public
iGEM 2018 Distribution Plate 3 Well 6A
iGEM_2018_Plate3_Well6A Version 1 (Collection)

Public
iGEM 2018 Distribution Plate 3 Well 12A
iGEM_2018_Plate3_Well12A Version 1 (Collection)

Public
iGEM 2019 Cell Low copy protein fusion vector (Silver lab standard)
iGEM_2019_Cell10 Version 1 (Collection)

Public
iGEM 2018 Cell Low copy protein fusion vector (Silver lab standard)
iGEM_2018_Cell13 Version 1 (Collection)

Public
liaR encodes Two-component response regulator [YvqE] responding to cell wall stress
module_BO_32649_encodes_BO_26995 Version 1 (Module)

Public
LiaS phosphorylates Two-component response regulator [YvqE] responding to cell wall stress
module_BO_26736_phosphorylates_BO_26995 Version 1 (Module)

Public
iGEM Parts Registry
igem_collection Version 1 (Collection)
The iGEM Registry is a growing collection of genetic parts that can be mixed and matched to build synthetic biology devices and systems. As part of the synthetic biology community's efforts to make biology easier to engineer, it provides a source of genetic parts to iGEM teams and academic labs.
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.
Public
Intein_assisted_Bisection_Mapping
Intein_assisted_Bisection_Mapping_collection Version 1 (Collection)
Split inteins are powerful tools for seamless ligation of synthetic split proteins. Yet, their use remains limited because the already intricate split site identification problem is often complicated by the requirement of extein junction sequences. To address this, we augmented a mini-Mu transposon-based screening approach and devised the intein-assisted bisection mapping (IBM) method. IBM robustly revealed clusters of split sites on five proteins, converting them into AND or NAND logic gates. We further showed that the use of inteins expands functional sequence space for splitting a protein. We also demonstrated the utility of our approach over rational inference of split sites from secondary structure alignment of homologous proteins. Furthermore, the intein inserted at an identified site could be engineered by the transposon again to become partially chemically inducible, and to some extent enabled post-translational tuning on host protein function. Our work offers a generalizable and systematic route towards creating split protein-intein fusions and conditional inteins for protein activity control.
Showing 5801 - 5829 of 5829 result(s)
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