Method Article

Single Sensillum Recordings for Locust Palp Sensilla Basiconica

DOI:

10.3791/57863

June 23rd, 2018

In This Article

Summary

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This paper describes a detailed and highly effective protocol for single sensillum recordings from the sensilla basiconica on the palps of insect mouthparts.

Abstract

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The palps of locust mouthparts are considered to be conventional gustatory organs that play an important role in a locust's food selection, especially for the detection of non-volatile chemical cues through sensilla chaetica (previously named terminal sensilla or crested sensilla). There is now increasing evidence that these palps also have an olfactory function. An odorant receptor (LmigOR2) and an odorant-binding protein (LmigOBP1) have been localized in the neurons and accessory cells, respectively, in the sensilla basiconica of the palps. Single sensillum recording (SSR) is used for recording the responses of odorant receptor neurons, which is an effective method for screening active ligands on specific odorant receptors. SSR is used in functional studies of odorant receptors in palp sensilla. The structure of the sensilla basiconica located on the dome of the palps differs somewhat from the structure of those on the antennae. Therefore, when performing an SSR elicited by odorants, some specific advice may be helpful for obtaining optimum results. In this paper, a detailed and highly effective protocol for an SSR from insect palp sensilla basiconica is introduced.

Introduction

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Animals have evolved a range of chemosensory organs that sense exogenous chemical cues. In insects, the most important chemosensory organs are the antennae and the palps. On these organs, several types of chemosensory hairs, called chemosensory sensilla, are innervated by chemosensory neurons (CSNs) within the hairs. CSNs in chemosensory sensilla recognize specific chemical cues through signal transduction from chemical stimuli to electrical potentials that are subsequently transferred up to the central nervous systems1,2,3.

CSNs express various chemosensory receptors [e.g., odorant receptors (ORs)], ionotropic receptors (IRs), and gustatory receptors (GRs) on their membranes, which encode exogenous chemical cues associated with different types of chemosensation4,5,6. The characterization of CSNs is key to the elucidation of cellular and molecular mechanisms of insect chemoreception. Now single sensillum recording (SSR) is a widely-used technique for the characterization of insect CSNs in the antennal sensilla of many insects, including flies7, moths8, beetles9, aphids10, locusts11, and ants12. However, few studies have applied an SSR to insect palps13,14,15,16,17, because the particular structures of their sensilla make an electrophysiological recording difficult18.

Swarms of locusts (Orthoptera) often cause serious crop damage and economic loss19. The palps are believed to play an important role in the food selection of locusts20,21,22,23,24. Two types of chemosensory sensilla are investigated by a scanning electron microscope (SEM). Usually, 350 sensilla chaetica and 7 - 8 sensilla basiconica are observed on each dome of the locust palps18. Sensilla chaetica are gustatory sensilla that sense non-volatile chemical cues, whereas sensilla basiconica have an olfactory function, sensing volatile chemical cues.

On locust palps, the diameters of the hair sockets of the sensilla basiconica (ca. 12 µm), are much greater than those of sensilla chaetica (ca. 8 µm)18,25. The cuticular wall of the sensilla basiconica on the palps is much thicker than that of antennal sensilla18. In addition, the dome of the palp has fluid contents within a highly flexible cuticle. These characteristics mean that a penetration with a microelectrode and an acquisition of good electrophysiological signals is more difficult than for antennal sensilla. In this paper, a detailed and highly effective SSR protocol for locust palp sensilla basiconica is presented with a video.

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Protocol

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1. Preparation of Instruments and Insect

  1. Preparing tungsten electrodes and stimuli solutions
    1. Fix a new tungsten wire (diameter of 0.125 mm, length of 75 mm) into a micromanipulator and sharpen it in a 10% (w/v) sodium nitrite (NaNO2) solution in a syringe at 10 V provided by a power supply for about 1 min under a stereomicroscope (40X magnification).
    2. Dip the sharpened tungsten wire repeatedly into the 10% NaNO2 solution, about 4 mm at 5 V in < 1 min (Figure 1A).
    3. Examine the diameter of the sharpened tungsten tip frequently under the stereomicroscope until it is fine enough to penetrate the cuticle of a locust palp olfactory sensillum (Figure 1B).
    4. Prepare the stimulus solutions. Dilute each of the chemical stimulus substance in mineral oil. Dilute 1-nonanol and nonanoic acid at 10% dilutions. Dilute E-2-hexenal and hexanal at 10-2, 10-3, 10-4, and 10-5.
    5. Prepare Pasteur tubes carrying the stimuli: insert filter paper strips (length of 2 cm, width of 0.5 cm) into the Pasteur tubes, add the diluted stimulus solutions (each 10 µl) to the filter paper strips, and then plug the Pasteur tubes with pipette tips (1 ml).
  2. Prepare the insect
    1. Rear locusts (Locusta migratoria) with fresh wheat seedlings under crowded conditions at a relative humidity of 60%, a temperature of 28 - 30 °C, and a photoperiod of 18:6 h (light:dark). Choose 1- to 3-day-old 5th instar locust nymphs and remove the antennae with fine scissors to avoid any interference when recording.
  3. Preparing the locust maxillary palp holder
    1. Use a glass slide (25 mm x 75 mm) as the base of the maxillary palp holder (MPH). Attach a plastic piece (1 mm in height, 10 mm in width, 35 mm in length) to a corner of the glass slide with double-sided adhesive tape, and finally fix a cover glass (18 mm x 18 mm) on top of the plastic piece with double-sided adhesive tape. Place a small piece of red rubber tape onto the cover glass as a non-slip layer. The plastic piece and the cover glass constitute the platform for the locust palp. The height of the platform is approximately 1.5 mm.
    2. Install a tungsten wire (diameter of 0.125 mm, length of 36 mm) at a distance of 1.5 mm parallel to the inside edge of the platform. Fix the two ends of the wire onto the platform with double-sided adhesive tape.

2. Preparation of Locust Maxillary Palps

  1. Cut a centrifuge tube (1.5 ml) vertically in half and cut off the bottom. Place the locust into the prepared tube. Leave the ventral region and the head of the locust exposed. Fix the assembly to the glass slide with double-sided adhesive tape (Figure 2A).
  2. Pull the right maxillary palp onto the platform.
  3. Put the tungsten wire at the fourth segment of the palp. Place adhesive putty on each side of the tungsten wire, about 2 mm from the maxillary palp (Figure 2A and 2B).

3. Single Sensillum Recordings

  1. Place the locust maxillary palp preparation under a microscope at a low magnification (100X). Adjust the position of the preparation until the palp is perpendicular to the recording electrode (Figure 3A).
  2. Insert the reference electrode (tungsten electrode) into the locust eye using a micromanipulator. Move the recording electrode (tungsten electrode) close to the maxillary palp with the micromanipulator (Figure 3B and 3C).
  3. Adjust the odor delivery device to about 1 cm from the maxillary palp (Figure 3B).
  4. Open the recording software Auto Spike 32. Set the recording parameters as follows: the recording scale on 500 µV; the high cutoff of the filter on 300 Hz, the low cutoff on 200 Hz; and the pretrigger on 10 s.
  5. Connect the recording electrode to a 10x universal AC/DC amplifier.
  6. Switch the microscope to a high magnification (500X). Insert the recording electrode into the base of a basiconic sensillum on the maxillary palp and delicately adjust the recording electrode to obtain good spontaneous spikes (Figure 3D).
  7. Open the stimulus controller to deliver a continuous air stream at 20 ml/s. Set the stimulation time to 1 s. Record signals for 10 s, starting 10 s before the onset of the stimulus pulse.
  8. Use a 10x universal AC/DC amplifier to amplify the signals. Feed the signals into the IDAC 4. Analyze the signals with the Auto Spike 32 software. AC signals are band-pass filtered between 200 to 300 Hz. Use Auto Spike 32 to distinguish peak-to-trough amplitudes from noises. Calculate the responses of the neurons as the increases in action potential frequencies (spikes per second) over the spontaneous frequencies. Perform a statistical analysis using GraphPad Prism 7.

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Results

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Two sensilla subtypes (pb1 and pb2) on the locust maxillary palp are identified based on different response dynamics to chemical odorants (10% 1-nonanol and 10% nonanoic acid). The neurons in pb1 produce significantly more spikes to 1-nonanol than to nonanoic acid while the neurons in pb2 are significantly less activated by 1-nonanol compared with nonanoic acid (Figure 4). Hexanal and E-2-Hexenal can evoke a locust palp opening response (POR)

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Discussion

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Insects rely on palps to detect food odors, and their palps are believed to play an important role in speciation13,27. The palps are simple olfactory organs and are receiving increasing attention as an attractive model for the exploration of the neuromolecular networks underlying chemosensation28.

Insect labellar and palp SSRs have been successfully performed on Drosophila melanogaster, Anopheles ga...

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Disclosures

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The authors have nothing to disclose.

Acknowledgements

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This work is supported by a grant from the National Natural Science Foundation of China (No.31472037). Any mention of trade names or commercial products in this article is solely for the purpose of providing specific information and does not imply a recommendation.

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Materials

List of materials used in this article
NameCompanyCatalog NumberComments
Tungsten wireADVENTW559504Used for making the electrode and fixing the palp
NaNO2Sigma-aldrich563218-25GUsed for sharpening the tungsten wire
AC Power SupplySyntechA2-70Providing the voltage in sharpening the tungsten wire
StereoscopeMoticSMZ-163Used for observing the sharpening of tungsten wire
MicroscopeOlympusW-51Used for observing the sensilla on locust maxillary palp
Intelligent Data Acquisition ControllerSyntechIDAC-4Real-time on screen display of all signals before and during recording
Stimulus controllerSyntechCS-55Used for controlling the stimulus application
Electronic micromanipulatorC.M.D.TCFT-8301DUsed for minor movement of the recording electrode
MicromanipulatorNarishigeMN-151Used for minor movement of the reference electrode
SpeakerEDIFIERR101T06Connected with IDAC-4 and providing sound for the signal
Magnetic basePDOKPD-101Used to hold the electrode, and stimulus delivery tube
Vibration Isolation TableTianHeHAP-100-1208Used for isolating the vibration from the equipment
Glass slideCITOGLASZBP-407Used for making the base for the MPH
Blu-tackBostikBlu-tack-45gFixing the tungsten wire
Pasteur tubeYAREWITEGPlacing the filter paper containing stimuli stimulus solutions

References

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Single Sensillum RecordingLocust PalpSensilla BasiconicaTungsten ElectrodeOdorant ReceptorChemical StimulusMaxillary PalpElectrophysiologyInsect OlfactionSensillum Preparation

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