Zigapusnik (Talk | contribs) |
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</a> | </a> | ||
<div class="ui vertical sticky text menu"> | <div class="ui vertical sticky text menu"> | ||
+ | <a class="item" href="idea"> | ||
+ | <i class="chevron circle right icon"></i> | ||
+ | <b>Overview</b> | ||
+ | </a> | ||
<a class="item" href="#intro" style="margin-left: 10%"> | <a class="item" href="#intro" style="margin-left: 10%"> | ||
<i class="selected radio icon"></i> | <i class="selected radio icon"></i> | ||
− | <b> | + | <b>Achievements</b> |
</a> | </a> | ||
− | <a class="item" href="# | + | <a class="item" href="#mot" style="margin-left: 10%"> |
<i class="selected radio icon"></i> | <i class="selected radio icon"></i> | ||
− | <b> | + | <b>Motivation</b> |
</a> | </a> | ||
− | <a class="item" href="# | + | <a class="item" href="#loc" style="margin-left: 10%"> |
<i class="selected radio icon"></i> | <i class="selected radio icon"></i> | ||
− | <b> | + | <b>Localization and expression</b> |
</a> | </a> | ||
+ | <a class="item" href="#us" style="margin-left: 10%"> | ||
+ | <i class="selected radio icon"></i> | ||
+ | <b>Ultrasound stimulation</b> | ||
+ | </a> | ||
<a class="item" href="idea"> | <a class="item" href="idea"> | ||
<i class="chevron circle right icon"></i> | <i class="chevron circle right icon"></i> | ||
− | <b> | + | <b>Gas Vesicles</b> |
</a> | </a> | ||
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<!-- content goes here --> | <!-- content goes here --> | ||
<div> | <div> | ||
− | <div class="main ui citing justified container"><h1 class = "ui left dividing header"><span class="section"> </span>Enhanced Mechanosensitivity by overexpressed <br/>Mechanosensitive Channels</h1> | + | <div class="main ui citing justified container"> |
− | + | <div> | |
− | + | <h1 class = "ui left dividing header"><span id = "intro" class="section"> </span>Enhanced Mechanosensitivity by overexpressed <br/>Mechanosensitive Channels</h1> | |
− | + | <div class = "ui segment" style = "background-color: #ebc7c7; "> | |
− | + | <p><b><ul><li>Ectopically expressed mechanosensitive ion channels MscS and P3:FAStm:TRPC1 were used to enhance sensitivity of mammalian cells to ultrasound stimulation. | |
− | + | <li>Membrane localization of the mechanosensitive channel TRPC1 was improved by fusing it with a FAS transmembrane domain, which also led to increased sensitivity to ultrasound stimulation. | |
− | + | </ul></b></p> | |
+ | </div> | ||
+ | </div> | ||
<div class = "ui segment"> | <div class = "ui segment"> | ||
+ | <h4><span id = "mot" class="section"> </span></h4> | ||
<p>We chose to test two mechanosensitive channels, human nonspecific cation channel TRPC1 and bacterial channel MscS, previously described as important receptors involved | <p>We chose to test two mechanosensitive channels, human nonspecific cation channel TRPC1 and bacterial channel MscS, previously described as important receptors involved | ||
in the response to mechanical stimulation in human and bacteria <x-ref>Haswell2011, Ye2013</x-ref>. | in the response to mechanical stimulation in human and bacteria <x-ref>Haswell2011, Ye2013</x-ref>. | ||
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<h1><span class="section"> </span>Results</h1> | <h1><span class="section"> </span>Results</h1> | ||
<div class = "ui segment"> | <div class = "ui segment"> | ||
− | <h4><span class="section"> </span>Localization and expression</h4> | + | <div> |
+ | <h4><span id = "loc" class="section"> </span>Localization and expression</h4> | ||
<p>The mechanosensitive TRPC1 channel with each subunit comprising six transmembrane helices (<ref>3</ref>A) and the MscS channel with three transmembrane | <p>The mechanosensitive TRPC1 channel with each subunit comprising six transmembrane helices (<ref>3</ref>A) and the MscS channel with three transmembrane | ||
helices (<ref>3</ref>A) were expressed in HEK293T cells (<ref>3</ref>D). MscS was detected as the 31 kDa band. TRPC1 was observed at 60 kDa, which was lower t | helices (<ref>3</ref>A) were expressed in HEK293T cells (<ref>3</ref>D). MscS was detected as the 31 kDa band. TRPC1 was observed at 60 kDa, which was lower t | ||
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function as mechanosensors by exposing them to the ultrasound stimulation. | function as mechanosensors by exposing them to the ultrasound stimulation. | ||
</p> | </p> | ||
− | + | </div> | |
− | <h4><span class="section"> </span>Ultrasound stimulation</h4><br/> | + | <div> |
− | + | <h4><span id = "us" class="section"> </span>Ultrasound stimulation</h4><br/> | |
− | + | <div style="clear:both" class="ui styled fluid accordion"> | |
− | + | <div class="title"> | |
− | Further explanation ... | + | <i class="dropdown icon"></i> |
+ | Further explanation ... | ||
+ | </div> | ||
+ | <div class="content"> | ||
+ | <p> | ||
+ | Ultrasound stimulation offers potentially remarkable advantages over the majority of external stimuli used for targeted cell stimulation. Optogenetics as another | ||
+ | promising approach to cell stimulation requires invasive surgery to implement optical fibers connected to the source of light – LED or laser <x-ref>Warden2014</x-ref> | ||
+ | in order to target cells in tissue to activate or silence them. On the other hand, ultrasound offers a non-invasive approach to overcome the problems which appear in | ||
+ | the abovementioned method. Its use has been demonstrated potentially even for noninvasive ultrasound therapy through an intact skull <x-ref>Hynynen1998</x-ref>. | ||
+ | Previously, ultrasound had been used in several in vitro studies to directly stimulate clusters of neurons but also in few model organisms (among others | ||
+ | <x-ref>King2013</x-ref>. | ||
+ | </p> | ||
+ | </div> | ||
+ | </div><br/> | ||
+ | |||
+ | <p>For mechanical stimulation of cells with ultrasound we designed our own unique experimental setup, which included the | ||
+ | <a href="https://2016.igem.org/Team:Slovenia/Hardware">ultrasound device MODUSON</a> that we constructed connected to the unfocused transducer Olympus | ||
+ | V318-SU and a 3D printed support for a transducer to fix it at a defined position relative to the cells. Stimulation conditions were optimized for our cell | ||
+ | line and experimental setup. To measure the changes of free calcium ion concentration we stained cells with two fluorescent dyes Fura Red and Fluo-4. | ||
+ | The combination of these two dyes enabled us to present changes in the calcium ion concentration as a ratio of the fluorescence intensity at two wavelengths, | ||
+ | which was superior to the intensity based measurements, since it is independent of photobleaching and dye sequestration | ||
+ | </p> | ||
+ | |||
+ | <div class="ui styled fluid accordion"> | ||
+ | <div class="title"> | ||
+ | <i class="dropdown icon"></i> | ||
+ | Further explanation ... | ||
+ | </div> | ||
+ | <div class="content"> | ||
+ | <p>Fura Red and Fluo-4 are visible light-excitable dyes used for ratiometric measurement of calcium ions which excitation maximum is at 488 nm. | ||
+ | While Fluo-4 exhibits an increase in fluorescence emission at 515 nm upon binding of calcium ions, fluorescence emission at 655 nm of Fura Red | ||
+ | decreases once the indicator binds calcium ions. By calculating the ratio of fluorescence emission intensities captured at 488 nm exaction | ||
+ | (where the difference of fluorescence between the bound and free indicator is at its maximum), we could observe changes in intracellular | ||
+ | calcium concentrations in real time. | ||
+ | </p> | ||
+ | </div> | ||
+ | </div><br/> | ||
+ | |||
+ | <p>We followed changes of calcium concentration after ultrasound stimulation in real time using ratiometric confocal microscopy. For processing of data we | ||
+ | developed our software <a href="https://2016.igem.org/Team:Slovenia/Software">CaPTURE</a>, which automatically calculated the ratio between fluorescence | ||
+ | intensities of FuraRed and Fluo-4 and presented the data as image and calculated values. | ||
+ | </p> | ||
+ | |||
+ | <p>We showed that by expressing the MscS channel, cells gained sensitivity for ultrasound stimulation in comparison to non-transfected cells (<ref>6</ref>). | ||
+ | Influx of calcium ions was observed at a lower rate in the case of ectopically expressed TRPC1 (data not shown), probably due to its poor membrane localization. | ||
+ | </p> | ||
+ | |||
+ | <div style = "clear:both; float:left;"> | ||
+ | <figure data-ref="5"> | ||
+ | <img onclick="resize(this);" class="ui medium image" src=" https://static.igem.org/mediawiki/2016/f/f2/T--Slovenia--S.3.1.1.png " > | ||
+ | <figcaption><b>INSERT!!!</b><br/></figcaption> | ||
+ | </figure> | ||
</div> | </div> | ||
− | <div | + | |
− | < | + | <div style = "clear:both;" align = "center"> |
− | + | <figure data-ref="6"> | |
− | + | <img class="ui big centered image" src="https://static.igem.org/mediawiki/2016/2/27/T--Slovenia--3.2.5.png" > | |
− | + | <div style = "clear:both; display:block; width: 90%; margin-right: auto; margin-left: auto"> | |
− | + | <div style = "display: block; float: left; width: 80%;"> | |
− | + | <!-- experiment: 20161002 2 MscS + Gvp 200V 90s --> | |
− | + | <img class = "playme" id = "gifGroup8" src = "//2016.igem.org/wiki/images/a/ad/T--Slovenia--Group71.png" width = "100%" data-alt="//2016.igem.org/wiki/images/b/be/T--Slovenia--20160929_2_MscS_200V_110s_graf.gif"> | |
− | </ | + | </div> |
+ | <div> | ||
+ | <!-- experiment: 20161002 2 MscS + Gvp 200V 90s --> | ||
+ | <div style = "display: block; float: left; width: 20%;"> | ||
+ | <img class="gifGroup8" src="//2016.igem.org/wiki/images/7/70/T--Slovenia--Group72.png", width = "100%" data-alt="//2016.igem.org/wiki/images/8/84/T--Slovenia--20160929_2_MscS_200V_110s_Regions.gif"> | ||
+ | </div> | ||
+ | <div style = "display: block; float: left; width: 20%;"> | ||
+ | <img class="gifGroup8" src="//2016.igem.org/wiki/images/8/83/T--Slovenia--Group73.png", width = "100%" data-alt="//2016.igem.org/wiki/images/8/8f/T--Slovenia--20160929_2_MscS_200V_110s_Controls.gif"> | ||
+ | </div> | ||
+ | <div style = "display: block; float: left; width: 20%;"> | ||
+ | <img class="gifGroup8" src="//2016.igem.org/wiki/images/0/0e/T--Slovenia--Group74.png", width = "100%" data-alt="//2016.igem.org/wiki/images/e/e4/T--Slovenia--20160929_2_MscS_200V_110s_HeatMap.gif"> | ||
+ | </div> | ||
+ | </div> | ||
+ | </div> | ||
+ | <figcaption><b> MscS channel improves sensitivity of cells for ultrasound.</b><br/> | ||
+ | (A) Schematic representation of a stimulation sequence and (B) signal parameters used for stimulation. | ||
+ | (C) and (D )Cells expressing MscS showed increased sensitivity to ultrasound stimulation in comparison to the cells without exogenous mechanosensitive | ||
+ | channel. HEK293 cells expressing MscS channels or control cells transfected with vector were stimulated with ultrasound for 10 s and calcium influx | ||
+ | was recorded in real time (D) using a confocal microscope. For comparison cells without ectopic MscS were used. Fluo-4 (D, green line) and Fura Red | ||
+ | dyes (D, red line) were used for ratiometric calcium imaging. (D) Ratio (blue line) was calculated from fluorescence intensities of Fura Red and Fluo-4 | ||
+ | using <a href="https://2016.igem.org/Team:Slovenia/Software">CaPTURE</a>.</figcaption> | ||
+ | </figure> | ||
</div> | </div> | ||
− | + | <p style="clear:both">Fusion of the FAS transmembrane domain to TRPC1 did not only improve its membrane localization, but also significantly enhanced its sensitivity to ultrasound | |
− | + | stimulation (<ref>8</ref>C), suggesting the importance of membrane localization in the function of mechanosensors. | |
− | + | </p> | |
− | + | ||
− | + | <div style = "clear:left;"> | |
− | + | <figure data-ref="7"> | |
− | + | <img onclick="resize(this);" class="ui medium image" src=" https://static.igem.org/mediawiki/2016/f/fd/T--Slovenia--S.3.1.2.png" > | |
− | + | <figcaption><b>INSERT!!!</b><br/></figcaption> | |
− | + | </figure> | |
− | + | ||
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</div> | </div> | ||
− | + | ||
− | + | <div style = "clear:both;" align = "center"> | |
− | + | <figure data-ref="8"> | |
− | + | <img class="ui big centered image" src="https://static.igem.org/mediawiki/2016/8/8a/T--Slovenia--3.2.4.png" > | |
− | + | <!--ŽIGA, vstavi GIF--> | |
− | + | <div style = "clear:both; display:block; width: 90%; margin-right: auto; margin-left: auto"> | |
− | + | <div style = "display: block; float: left; width: 80%;"> | |
− | + | <!-- experiment: 20161002 2 MscS + Gvp 200V 90s --> | |
− | + | <img class = "playme" id = "gifGroup8" src = "//2016.igem.org/wiki/images/1/10/T--Slovenia--Group51.png" width = "100%" data-alt="//2016.igem.org/wiki/images/4/41/T--Slovenia--201607192_P3_FAS_TRPC1200V.gif"> | |
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</div> | </div> | ||
− | <div style = "display: block; float: left; width: 20%;"> | + | <div> |
− | <img class="gifGroup8" src="//2016.igem.org/wiki/images/ | + | <!-- experiment: 20161002 2 MscS + Gvp 200V 90s --> |
+ | <div style = "display: block; float: left; width: 20%;"> | ||
+ | <img class="gifGroup8" src="//2016.igem.org/wiki/images/c/c7/T--Slovenia--Group52.png", width = "100%" data-alt="//2016.igem.org/wiki/images/0/00/T--Slovenia--201607192_P3_FAS_TRPC1200Vregion.gif"> | ||
+ | </div> | ||
+ | <div style = "display: block; float: left; width: 20%;"> | ||
+ | <img class="gifGroup8" src="//2016.igem.org/wiki/images/b/be/T--Slovenia--Group53.png", width = "100%" data-alt="//2016.igem.org/wiki/images/6/60/T--Slovenia--201607192_P3_FAS_TRPC1200Vcontrol.gif"> | ||
+ | </div> | ||
+ | <div style = "display: block; float: left; width: 20%;"> | ||
+ | <img class="gifGroup8" src="//2016.igem.org/wiki/images/c/cb/T--Slovenia--Group54.png", width = "100%" data-alt="//2016.igem.org/wiki/images/b/b9/T--Slovenia--201607192_P3_FAS_TRPC1200Vheatmap.gif"> | ||
+ | </div> | ||
</div> | </div> | ||
− | + | </div> | |
− | + | <figcaption><b>P3:FAS:TRPC1 channel improves sensitivity of cells for ultrasound.</b><br/> | |
− | + | (A) Schematic presentation of a stimulation sequence and (B) signal parameters used for stimulation. | |
− | + | (C) and (D ) Cells expressing P3:FAS:TRPC1 showed increased sensitivity to ultrasound stimulation in comparison to the cells without exogenous mechanosensitive channel. | |
− | + | HEK293 cells expressing P3:FAS:TRPC1 were stimulated with ultrasound for 10 s and calcium influx was recorded in real time (D) using a confocal microscope. For comparison | |
− | + | cells without ectopic MscS were used. Fluo-4 (D, green line) and Fura Red dyes (D, red line) were used for ratiometric calcium imaging. (D) Ratio (blue line) was calculated | |
− | + | from fluorescence intensities of Fura Red and Fluo-4 using <a href="https://2016.igem.org/Team:Slovenia/Software">CaPTURE</a>. </figcaption> | |
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− | + | </div> | |
− | + | <p style="clear:both">In order to observe mechanostimulation of cells with ectopically expressed mechanoreceptors we had to use high-power ultrasound, however we tested that the cells nevertheless | |
− | + | did not lose the viability by ultrasound stimulation. Our next challenge was to further improve sensitivity of cells to respond to lower power ultrasound as this would avoid | |
− | < | + | stimulation of any endogenous channels and limit stimulation only to the engineered. |
− | + | </p> | |
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Revision as of 21:30, 17 October 2016
Enhanced Mechanosensitivity by overexpressed
Mechanosensitive Channels
We chose to test two mechanosensitive channels, human nonspecific cation channel TRPC1 and bacterial channel MscS, previously described as important receptors involved
in the response to mechanical stimulation in human and bacteria
Transient receptor potential channel 1 (TRPC1) is a human non-specific cation channel located at the plasma membrane. It has been previously reported as
broadly expressed in human tissues where it functions as a store-operating calcium channel
The second channel that we selected is the bacterial mechanosensitive channel MscS. Its role is to mediate turgor regulation in bacteria and it is
activated by changes in osmotic pressure
Results
Localization and expression
The mechanosensitive TRPC1 channel with each subunit comprising six transmembrane helices (3A) and the MscS channel with three transmembrane helices (3A) were expressed in HEK293T cells (3D). MscS was detected as the 31 kDa band. TRPC1 was observed at 60 kDa, which was lower t han expected. We observed that the membrane localization in HEK293 was more evident for MscS (3B) rather than TRPC1 (3C).
To improve membrane localization of TRPC1 we fused a FAS transmembrane domain to TRPC1 (4A), since the
transmembrane FAS domain has been very efficient in Jerala lab for the membrane localization
In addition to the improved membrane localization, the FAS transmembrane domain linked to the TRPC1 presents another advantage. The TRPC1 is an ion channel with six transmembrane helices, therefore both the N- and the C-terminus of the protein are orientated towards the interior of the cell. By addition of the FAS transmembrane domain, the N-terminus of P3:FAStm:TRPC1 chimera (where P3 stands for coiled coil, hyperlink to CC page) is exposed in the extracellular space and could interact with different proteins from outside the cell via the N-terminal tag. We reasoned that this interaction could be used to achieve a higher sensitivity to mechanical stimuli.
After we showed that the selected ion channels MscS, TRPC1 and P3:FAStm:TRPC1 are expressed in HEK293 and localized at the plasma membrane, we further tested their function as mechanosensors by exposing them to the ultrasound stimulation.
Ultrasound stimulation
Ultrasound stimulation offers potentially remarkable advantages over the majority of external stimuli used for targeted cell stimulation. Optogenetics as another
promising approach to cell stimulation requires invasive surgery to implement optical fibers connected to the source of light – LED or laser
For mechanical stimulation of cells with ultrasound we designed our own unique experimental setup, which included the ultrasound device MODUSON that we constructed connected to the unfocused transducer Olympus V318-SU and a 3D printed support for a transducer to fix it at a defined position relative to the cells. Stimulation conditions were optimized for our cell line and experimental setup. To measure the changes of free calcium ion concentration we stained cells with two fluorescent dyes Fura Red and Fluo-4. The combination of these two dyes enabled us to present changes in the calcium ion concentration as a ratio of the fluorescence intensity at two wavelengths, which was superior to the intensity based measurements, since it is independent of photobleaching and dye sequestration
Fura Red and Fluo-4 are visible light-excitable dyes used for ratiometric measurement of calcium ions which excitation maximum is at 488 nm. While Fluo-4 exhibits an increase in fluorescence emission at 515 nm upon binding of calcium ions, fluorescence emission at 655 nm of Fura Red decreases once the indicator binds calcium ions. By calculating the ratio of fluorescence emission intensities captured at 488 nm exaction (where the difference of fluorescence between the bound and free indicator is at its maximum), we could observe changes in intracellular calcium concentrations in real time.
We followed changes of calcium concentration after ultrasound stimulation in real time using ratiometric confocal microscopy. For processing of data we developed our software CaPTURE, which automatically calculated the ratio between fluorescence intensities of FuraRed and Fluo-4 and presented the data as image and calculated values.
We showed that by expressing the MscS channel, cells gained sensitivity for ultrasound stimulation in comparison to non-transfected cells (6). Influx of calcium ions was observed at a lower rate in the case of ectopically expressed TRPC1 (data not shown), probably due to its poor membrane localization.
Fusion of the FAS transmembrane domain to TRPC1 did not only improve its membrane localization, but also significantly enhanced its sensitivity to ultrasound stimulation (8C), suggesting the importance of membrane localization in the function of mechanosensors.
In order to observe mechanostimulation of cells with ectopically expressed mechanoreceptors we had to use high-power ultrasound, however we tested that the cells nevertheless did not lose the viability by ultrasound stimulation. Our next challenge was to further improve sensitivity of cells to respond to lower power ultrasound as this would avoid stimulation of any endogenous channels and limit stimulation only to the engineered.