Jove
Visualize
Contact Us
JoVE
x logofacebook logolinkedin logoyoutube logo
ABOUT JoVE
OverviewLeadershipBlogJoVE Help Center
AUTHORS
Publishing ProcessEditorial BoardScope & PoliciesPeer ReviewFAQSubmit
LIBRARIANS
TestimonialsSubscriptionsAccessResourcesLibrary Advisory BoardFAQ
RESEARCH
JoVE JournalMethods CollectionsJoVE Encyclopedia of ExperimentsArchive
EDUCATION
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab ManualFaculty Resource CenterFaculty Site
Terms & Conditions of Use
Privacy Policy
Policies

Related Concept Videos

Increased Body Temperature01:25

Increased Body Temperature

5.6K
A body temperature above  38°C  (100.4 °F) is known as fever or pyrexia, and a person with fever is termed 'febrile.' Typically, the hypothalamus, a part of the brain that acts as the body's thermostat, regulates body temperature through a thermoregulatory setpoint. It receives signals from cold and warm thermal receptors throughout the body and adjusts the body's temperature accordingly. Fever occurs when this hypothalamic setpoint is altered, usually in...
5.6K
Homeostatic Imbalances in Body Temperature01:19

Homeostatic Imbalances in Body Temperature

1.9K
Hyperthermia occurs when the body's temperature becomes unusually high, often due to heat exposure, intense physical activity, or certain illnesses. This condition can create a dangerous cycle where elevated body temperature increases the metabolic rate, generating more heat and potentially leading to organ failure and brain damage. A severe form of hyperthermia, called heat stroke, can raise body temperature to life-threatening levels. Fever, on the other hand, is a controlled form of...
1.9K
Decreased Body Temperature01:29

Decreased Body Temperature

776
A decreased body temperature can occur in patients with hypothermia and frostbite. Heat loss with extended cold exposure overpowers the body's ability to create heat, resulting in hypothermia. Core temperature readings help classify hypothermia. Mild hypothermia is temperatures between 32 °C (89.6 °F) and 35°C (95 °F) and is caused by impaired thermoregulation. Moderate hypothermia is temperatures between 28 C (82.4 °F) and 32 °C (89.6 °F) caused by...
776
Methods of reducing fever01:22

Methods of reducing fever

929
The signs and symptoms of fever include hot and dry skin, flushed face, thirst, muscle aches, anorexia, headache, tachycardia, tachypnea, and fatigue. Elevated body temperature is reduced using two methods: pharmacological and nonpharmacological. Proper identification and treatment of the root cause of a fever is of utmost importance.
Pharmacological Methods of Reducing Fever:
929

You might also read

Related Articles

Articles linked to this work by shared authors, journal, and citation graph.

Sort by
Same author

Investigation of Bulimulus bonariensis visual preferences to increase trap attraction.

Pest management science·2026
Same author

Push-pull strategy that combines olfactory and visual cues for management of ambrosia beetles (Coleoptera: Curculionidae: Scolytinae and Platypodinae) in avocado.

Environmental entomology·2026
Same author

Xylosandrus germanus (Coleoptera: Curculionidae) peak flight activity driven by temperature and time of day.

Environmental entomology·2026
Same author

Vapor-phase (S)-methoprene alters cuticular hydrocarbons in the Argentine ant (Hymenoptera: Formicidae).

Scientific reports·2026
Same author

Assessing the efficacy of predatory arthropods in controlling Asian citrus psyllid (Hemiptera: Psyllidae) eggs.

Journal of economic entomology·2026
Same author

Exposure to sex pheromone from the pupal stage through eclosion has contrasting effects on subsequent mating behaviors of codling moth and oriental fruit moth adults.

Environmental entomology·2025

Related Experiment Video

Updated: Nov 6, 2025

High-Throughput Assays of Critical Thermal Limits in Insects
06:58

High-Throughput Assays of Critical Thermal Limits in Insects

Published on: June 15, 2020

5.4K

High Temperatures Decrease the Flight Capacity of Diaphorina citri Kuwayama (Hemiptera: Liviidae).

Carlos A Antolinez1, Tobias Moyneur1, Xavier Martini2

  • 1Department of Entomology, University of California Riverside, 900 University Ave., Riverside, CA 92521, USA.

Insects
|May 5, 2021
PubMed
Summary

High temperatures above 40°C reduce Asian citrus psyllid (ACP) flight capacity, impacting pest spread. Humidity also influences flight duration, with high humidity decreasing long flights.

Keywords:
Asian citrus psyllidHLB primary spreadcitrus greeningflight behaviorflight millheat tolerancevector dispersion

More Related Videos

Determining Temperature Preference of Mosquitoes and Other Ectotherms
05:31

Determining Temperature Preference of Mosquitoes and Other Ectotherms

Published on: September 28, 2022

2.6K
Heat Tolerance Assays Using the Drosophila Activity Monitor System: A Guide to an Executable Application for Data Analysis
05:05

Heat Tolerance Assays Using the Drosophila Activity Monitor System: A Guide to an Executable Application for Data Analysis

Published on: December 13, 2024

725

Related Experiment Videos

Last Updated: Nov 6, 2025

High-Throughput Assays of Critical Thermal Limits in Insects
06:58

High-Throughput Assays of Critical Thermal Limits in Insects

Published on: June 15, 2020

5.4K
Determining Temperature Preference of Mosquitoes and Other Ectotherms
05:31

Determining Temperature Preference of Mosquitoes and Other Ectotherms

Published on: September 28, 2022

2.6K
Heat Tolerance Assays Using the Drosophila Activity Monitor System: A Guide to an Executable Application for Data Analysis
05:05

Heat Tolerance Assays Using the Drosophila Activity Monitor System: A Guide to an Executable Application for Data Analysis

Published on: December 13, 2024

725

Area of Science:

  • Entomology
  • Pest Management
  • Climate Change Impact

Background:

  • Asian citrus psyllid (Diaphorina citri Kuwayama) is an invasive pest and vector of Huanglongbing (HLB).
  • ACP spread varies across US citrus-producing regions due to climatic differences.
  • The impact of high temperatures and low humidity on ACP flight capacity remains largely unknown.

Purpose of the Study:

  • To investigate the effect of high temperatures (>30 °C) and varying relative humidity on ACP flight capacity and propensity.
  • To determine temperature and humidity thresholds affecting ACP flight behavior.

Main Methods:

  • Utilized a custom-made, temperature-controlled flight mill arena.
  • Assessed flight capacity and propensity of ACP under different temperature (26-43 °C) and relative humidity (20-40% and 76-90%) conditions.

Main Results:

  • Temperature and humidity significantly influence ACP flight propensity for short (<60 s) and long (≥60 s) flights.
  • High relative humidity decreased the proportion of long flights at 26 and 40 °C.
  • Flight capacity was affected by temperature but not humidity; higher temperatures negatively correlated with flight distance and duration.

Conclusions:

  • ACP can fly across a broad temperature range and is efficient in both high and low humidity.
  • Temperatures exceeding 40 °C are detrimental to ACP flight capacity, particularly in semi-arid environments.
  • Flight capacity is optimized at 26 °C, with reduced capacity at 32-37 °C and significantly impaired capacity at 40-43 °C.