Odorant binding protein: Difference between revisions

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The c-terminus of the protein bears mostly <scene name='68/683383/Hydrophobic_resid/1'>non-polar amino acids</scene>. Yet on the surface of the helix there are three exceptional amino acids: Asp-132, Glu-137, and Glu-141, which are conserved in moth PBP <ref>doi: 10.1016/j.bbrc.2005.07.176</ref>. Of these, residues <scene name='68/683383/Asp132/1'>Asp-132</scene> (and Glu-141, if present) triggers the formation of the alpha-helix upon protonation at low pH. This causes the transition from the <scene name='68/683383/B_form_with_ligand/1'>"A form"</scene>, to the <scene name='68/683383/A_form_with_ligand/1'>"B form"</scene> and the ejaculation of the ligand from the binding pocket, which is replaced by the formatted alpha helix<ref>doi: 10.1016/j.bbrc</ref>.  
The c-terminus of the protein bears mostly <scene name='68/683383/Hydrophobic_resid/1'>non-polar amino acids</scene>. Yet on the surface of the helix there are three exceptional amino acids: Asp-132, Glu-137, and Glu-141, which are conserved in moth PBP <ref>doi: 10.1016/j.bbrc.2005.07.176</ref>. Of these, residues <scene name='68/683383/Asp132/1'>Asp-132</scene> (and Glu-141, if present) triggers the formation of the alpha-helix upon protonation at low pH. This causes the transition from the <scene name='68/683383/B_form_with_ligand/1'>"A form"</scene>, to the <scene name='68/683383/A_form_with_ligand/1'>"B form"</scene> and the ejaculation of the ligand from the binding pocket, which is replaced by the formatted alpha helix<ref>doi: 10.1016/j.bbrc</ref>.  
Studies on other lepidopterans that show a similar pH dependent conformation suggests that this model is a general model moth PBP<ref name="Leal" />. Nonetheless, the enormous diversity among insects is not allowing us to assume this model is true for all insects' OBPs.
Studies on other lepidopterans that show a similar pH dependent conformation suggests that this model is a general model moth PBP<ref name="Leal" />. Nonetheless, the enormous diversity among insects is not allowing us to assume this model is true for all insects' OBPs.
[[Image:N model extended.png|thumb|upright=2.5|Figure 1. The events prior the neuron excitation, following the "N model" suggested by Kaissling (2009)<ref name="kaissling">DOI: 10.1007/s00359-009-0461-4</ref> The pheromone enters the sensillar lymph through a pore in cuticle. The pheromone can then be degraded by the ODE (1) -or- bind to the A and B protein forms (2a and 2b, respectively).  When the complex arrives at the low pH near the membrane, the transition is in favor of the A-form, (3) in which the -c-terminus is forming an alpha helix inside the binding cavity, pushing out the pheromone. The activation of the complex of odorant receptor and coreceptor (OR:OR-CO), is induced by ether the complex of pheromone-PBP, or by the pheromone alone (5, two options). The B-form can also act as a scavenger, as it mediates the deactivation of the pheromone (6) and releases it to the ODE (6)]]  
[[Image:N model extended.png|thumb|upright=2.5|Figure 1. The events prior the neuron excitation, following the "N model" suggested by Kaissling (2009)<ref name="kaissling">DOI: 10.1007/s00359-009-0461-4</ref> The pheromone enters the sensillar lymph through a pore in cuticle. The pheromone can then be degraded by the ODE (1) -or- bind to the A and B protein forms (2a and 2b, respectively).  When the complex arrives at the low pH near the membrane, the transition is in favor of the A-form, (3) in which the -c-terminus is forming an alpha helix inside the binding cavity, pushing out the pheromone. The activation of the complex of odorant receptor and coreceptor (OR:Orco), is induced by ether the complex of pheromone-PBP, or by the pheromone alone (5, two options). The B-form can also act as a scavenger, as it mediates the deactivation of the pheromone (6) and releases it to the ODE (6)]]  
====Receptor activation====
====Receptor activation====
Two theories have been proposed for the activation of the odorant receptors located on the dendrtirte membrane. One theory suggests that the pheromone-PBP complex is needed for the receptor activation, while the second theory argues that the pheromone itself is sufficient for the activation of the receptor.  
The insect odorant receptor is a heteromer composed of a single ligand-binding OR and the OR coreceptor Orco <ref name="Larsson ">DOI: 10.1016/j.neuron.2004.08.019</ref>. Orco acts as a [http://en.wikipedia.org/wiki/Chaperone_%28protein%29 chaperone] and also play a role in signal transduction <ref>doi: 10.1038/nature06861</ref>. The activation of this complex begins the intracellular signal transduction. Two theories have been proposed for the activation of the odorant receptors located on the dendrite membrane. One theory suggests that the pheromone-PBP complex is needed for the activation of the OR:CO complex, while the second theory argues that the pheromone itself is sufficient for the activation of the OR:CO.  





Revision as of 12:28, 29 January 2015

Bombyx mori, the silk moth, picture by Fernando Cuenca
Bombykol, a sex pheromone of Bombyx mori, from PubChem

Introduction

Odorant-binding protein (OBP) are soluble proteins which are involved in the processes of odorant detection in the olfactory sensilla [1]. Though functionally the same, vertebrates and insects OBP have different origin and structure. OBPs are important for insect olfaction. For instance, OBP76a (LUSH) in the fly Drosophila melanogaster is required for the detection of the pheromone vaccenyl acetate [2] and has been proven to adopt a conformation that activates the odorant receptor [3].

OBP in insects

OBP Function

Despite five decades of intensive research, the exact roles of OBP and the mechanism by which the odorant receptor (OR) is activated are still in dispute [4][5].

A few functions have been suggested for OBP:

1. Solubilizing the odorant molecule and its transportation in the sensillar lymph.

2. Protecting the odorant molecule from the odorant degrading enzymes, in the sensillar lymph.

3. Activating the odorant receptor on the dendrite membrane, by the odorant-OBP complex.

4. Mediating the deactivation of the odorant molecule after the activation of the receptor.

5. An organic anion (the protein has 9 negative charges).

Of all, the first role of OBP as an odorant solubilizer and carrier is generally accepted.

In order to explain the structure and function of these fascinating proteins, this page will further focus on a particular OBP - the well investigated Bombyx mori pheromone binding protein: BmorPBP.


Bombyx mori BmorPBP (lets talk about sex..)

Drag the structure with the mouse to rotate

See also

References

  1. ↑ Pelosi P, Iovinella I, Felicioli A, Dani FR. Soluble proteins of chemical communication: an overview across arthropods. Front Physiol. 2014 Aug 27;5:320. doi: 10.3389/fphys.2014.00320. eCollection, 2014. PMID:25221516 doi:https://dx.doi.org/10.3389/fphys.2014.00320
  2. ↑ Xu P, Atkinson R, Jones DN, Smith DP. Drosophila OBP LUSH is required for activity of pheromone-sensitive neurons. Neuron. 2005 Jan 20;45(2):193-200. PMID:15664171 doi:10.1016/j.neuron.2004.12.031
  3. ↑ Laughlin JD, Ha TS, Jones DN, Smith DP. Activation of pheromone-sensitive neurons is mediated by conformational activation of pheromone-binding protein. Cell. 2008 Jun 27;133(7):1255-65. PMID:18585358 doi:10.1016/j.cell.2008.04.046
  4. ↑ Leal WS. Odorant reception in insects: roles of receptors, binding proteins, and degrading enzymes. Annu Rev Entomol. 2013;58:373-91. doi: 10.1146/annurev-ento-120811-153635. Epub, 2012 Sep 27. PMID:23020622 doi:https://dx.doi.org/10.1146/annurev-ento-120811-153635
  5. ↑ Kaissling KE. Olfactory perireceptor and receptor events in moths: a kinetic model revised. J Comp Physiol A Neuroethol Sens Neural Behav Physiol. 2009 Oct;195(10):895-922. , doi: 10.1007/s00359-009-0461-4. Epub 2009 Aug 21. PMID:19697043 doi:https://dx.doi.org/10.1007/s00359-009-0461-4