Difference between revisions of "Part:BBa K3889070"
AshWinShaRma (Talk | contribs) |
AshWinShaRma (Talk | contribs) |
||
Line 20: | Line 20: | ||
* [http://openwetware.org/wiki/Cconboy:Terminator_Characterization/Results How these parts were measured] | * [http://openwetware.org/wiki/Cconboy:Terminator_Characterization/Results How these parts were measured] | ||
− | + | ||
− | + | ||
<h1>Improvement:</h1> | <h1>Improvement:</h1> | ||
− | + | <h3>Introduction:</h3> | |
− | + | While engineering any new circuit, there is always a need for well-characterized and predictable parts. Not only should the circuit function as expected, but it should also be orthogonal to irrelevant cell processes, thereby increasing the need to have efficient production and, in some cases, more importantly, efficient termination. While there are several well-studied and efficient terminators for <em>E.coli</em>, we found no specific efficient single terminator on the iGEM registry that could stand out for <i>B.subtilis</i> chassis. Hence, we decided to improvise a terminator which might fulfil this gap. | |
+ | |||
+ | <h3>Measuring efficiency:</h3> | ||
+ | The experiment is divided into two cassettes: one reference and the other is a test cassette containing a terminator whose efficiency needs to be determined as shown by Gale et al.[1]. | ||
+ | |||
+ | |||
+ | [[File:T--IISER-Tirupati_India--Improvement1.jpeg|690px]]<br> | ||
+ | Fig 1. Spacer Cassette for Terminator check | ||
+ | |||
+ | [[File:T--IISER-Tirupati_India--Improvement2.jpeg|690px]]<br> | ||
+ | Fig 2. Spacer replaced by BBa_B0010 | ||
+ | |||
+ | [[File:T--IISER-Tirupati_India--Improvement3.jpeg|690px]]<br> | ||
+ | Fig 3. Spacer replaced by BBa_K3889070 | ||
+ | |||
+ | |||
+ | |||
+ | |||
+ | |||
+ | The reference (Fig 1) and the test cassette (Fig 2 and 3) provide us with the expression levels of both the fluorescent proteins which could be compared to tell us how efficiently the terminator is working. | ||
+ | |||
+ | Formulae for terminator efficiency [1]: | ||
+ | |||
+ | [[File:T--IISER-Tirupati_India--Eq1.png]] | ||
+ | |||
+ | where | ||
+ | |||
+ | mCherry<sub>0</sub> → mCherry produced by device without terminator | ||
+ | |||
+ | sfGFP<sub>0</sub> → sfGFP produced by device without terminator | ||
+ | |||
+ | |||
+ | Using the <partinfo>BBa_K3889130</partinfo> without any changes, TE<sub>Device</sub> can be calculated which gives the expression of mCherry in absence of terminator. | ||
+ | |||
+ | [[File:T--IISER-Tirupati_India--Eq2.png]] | ||
+ | |||
+ | where | ||
+ | |||
+ | mCherry → mCherry produced by the device with terminator that needs to checked | ||
− | + | sfGFP → sfGFP produced by the device with terminator that needs to checked | |
− | + | ||
− | + | <h3>d-score</h3> | |
− | + | For E. coli terminators d'Aubenton Carafa [3] gave a scoring system as shown below: | |
− | + | ||
− | + | ||
− | + | [[File:T--IISER-Tirupati_India--Eq3.png]] | |
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | where | |
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | d is the d-score | |
− | + | Δ G is the Gibbs free energy of stem-loop formation in kcal/mole | |
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | n<sub>SL</sub> is the length of the stem-loop | |
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | T-Score is the score for the T-stretch of the terminators | |
− | + | Coefficients are according to fitting the d'Aubenton Carafa’s model | |
− | + | The T-Score is calculated as follows: | |
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | [[File:T--IISER-Tirupati_India--Eq4.png]] | |
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | Where | |
− | + | ||
− | + | ||
− | + | ||
− | + | x<sub>0</sub> = 0.9 | |
− | + | x<sub>i</sub> = 0.9 if i<sup>th</sup> nucleotide is thymine | |
− | + | x<sub>i</sub>= 0.6 * x<sup>i-1</sup> if i<sup>th</sup> nucleotide is not thymine | |
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | + | ||
− | </ | + |
Revision as of 14:50, 17 October 2021
|
Double terminator for Bacillus subtilis
|
Secondary Structure
Measurement
- [http://openwetware.org/wiki/Cconboy:Terminator_Characterization/Results How these parts were measured]
Improvement:
Introduction:
While engineering any new circuit, there is always a need for well-characterized and predictable parts. Not only should the circuit function as expected, but it should also be orthogonal to irrelevant cell processes, thereby increasing the need to have efficient production and, in some cases, more importantly, efficient termination. While there are several well-studied and efficient terminators for E.coli, we found no specific efficient single terminator on the iGEM registry that could stand out for B.subtilis chassis. Hence, we decided to improvise a terminator which might fulfil this gap.
Measuring efficiency:
The experiment is divided into two cassettes: one reference and the other is a test cassette containing a terminator whose efficiency needs to be determined as shown by Gale et al.[1].
Fig 1. Spacer Cassette for Terminator check
Fig 2. Spacer replaced by BBa_B0010
Fig 3. Spacer replaced by BBa_K3889070
The reference (Fig 1) and the test cassette (Fig 2 and 3) provide us with the expression levels of both the fluorescent proteins which could be compared to tell us how efficiently the terminator is working.
Formulae for terminator efficiency [1]:
where
mCherry0 → mCherry produced by device without terminator
sfGFP0 → sfGFP produced by device without terminator
Using the BBa_K3889130 without any changes, TEDevice can be calculated which gives the expression of mCherry in absence of terminator.
where
mCherry → mCherry produced by the device with terminator that needs to checked
sfGFP → sfGFP produced by the device with terminator that needs to checked
d-score
For E. coli terminators d'Aubenton Carafa [3] gave a scoring system as shown below:
where
d is the d-score
Δ G is the Gibbs free energy of stem-loop formation in kcal/mole
nSL is the length of the stem-loop
T-Score is the score for the T-stretch of the terminators
Coefficients are according to fitting the d'Aubenton Carafa’s model
The T-Score is calculated as follows:
Where
x0 = 0.9
xi = 0.9 if ith nucleotide is thymine
xi= 0.6 * xi-1 if ith nucleotide is not thymine