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Summary Immunology of Tropical Infectious Diseases | Universiteit Antwerpen | 2025/2026

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Lecture notes from the Immunology of Tropical Infectious Diseases course at Universiteit Antwerpen, taught by Guy Caljon in 2025/2026. The document covers the invertebrate host module, including how blood-feeding arthropods transmit pathogens (mosquitoes, ticks, lice, reduviid bugs), pathogen establishment in arthropod guts, physiological barriers like the peritrophic matrix, and the arthropod immune system with detailed coverage of hemocytes (plasmatocytes, lamellocytes, oenocytoids) and their roles in phagocytosis, encapsulation, and melanization. Essential for understanding vector-borne disease mechanisms and tropical infection pathways - well-organized with clear diagrams and systematic breakdowns of complex immunological processes.

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2025-2026 Immunology Guy Caljon




IMMUNOLOGY OF TROPICAL INFECTIOUS
DISEASES
THE INVERTEBRATE HOST

INVERTEBRATES AS PARASITE HOSTS AND DISEASE VECTORS

• Various pathogens transmitted by blood feeding arthropods
o Mites: Rickettsia sp.
o Ticks: Lyme disease, babesiosis, theileriosis, TBEV
o Lice: Epidemic typhus (Rickettsia), trench fever, recurrent fever
o Mosquitoes:
§ Protozoa: malaria
§ Arboviruses: yellow fever, dengue, chikungunya, zika, WNV
§ Nematodes: Wuchereria, Brugia (lymphatic filariids)
• Reduviid bugs: Chagas disease
• Dipters: leishmaniasis and human African trypanosomiasis
• When taking a blood meal, the arthropods can take up a pathogen or transmit a pathogen to another
vector à the pathogen must enter the arthropod through the blood meal and go to a place where it
can be transmitted again
• Parasite life cycles depend on specific interactions with the vector:




• Besides parasites, insects harbor a microbiome, including bacterial symbionts in the midgut à
interesting since we can modify the microbiome of insects and render them for example resistant to
certain pathogens J


ESTABLISHMENT IN THE ARTHROPOD GUT

• Arthropods cuticula is made of beta 1,4-N-acetylglucosamine
à it is water resistant and therefore forms a barrier for pathogens
• The inside and outside of the gastrointestinal tract (GIT) of insects is
covered with a layer of chitin (carbohydrate) and a layer of lipid
o The lipid layer prevents the insect from drying out
o The entire GIT is chitin-based, except for the midgut, where many proteins are digested
• The pathogen enters the arthropod when during its blood meal from an infected host à it must
migrate from the human environment (the blood meal) to the insects’ midgut
à There are typical physiological barriers/triggers during this migration
• Malpighian tubules are primitive kidneys that help in the dehydration of the blood meal (= fast
removal of water that is present in the blood meal)
o The insect is quite small and cannot keep this much water


1

,2025-2026 Immunology Guy Caljon

• The blood bolus, containing the pathogen moves to the digestive part (pharynx à esophagus à crop
à midgut) à this pathogen must then overcome the environment of the midgut:
o Temperature change: the pathogen experiences a shift from the hosts body temperature
(37°C) to that of the arthropod, which affects its survival
o High pH
o High proteolytic activity (trypsin/chymotrypsin)
o Gut microbiota (competition or direct killing of pathogen)
• It must then be able to cross the midgut to colonize other arthropod organs (like haemocoel or
salivary glands) à the peritrophic matrix (PM) also functions as a barrier
o The PM is a protective mesh-like structure composed of chitin and proteoglycans that allow
nutrients to pass while blocking many pathogens
o The ectoperitrophic space (area between the PM and epithelium) is a strategic target for
pathogens because it provides access to host cells

ARTHROPOD IMMUNE SYSTEM


IMMUNE CELLS

• Haemocoel = the body cavity (space) which
contains hemolymph (blood/lymph)
• This haemolymphe contains hemocytes play a
key role in the immune response of insects
o Haemocytes » white blood cells
o They can be circulating (mobile) or
sessile (stationary)
• There’s also the fat body = primitive liver = made of lipid storage cells and plays a crucial role in the
immune response activation and production of antimicrobial peptides (AMPs) that help infections
• Arthropod immune system: hemolymph/hemocytes
There are different types of hemocytes:
o Plasmatocytes:
§ Phagocytosis (engulfment of small pathogens)
§ Encapsulation (trapping of larger pathogens by paving a cell layer around the
pathogen)
§ AMP production
o Lamellocytes:
§ Encapsulation
§ Melanization (production of melanin to create a black capsule around the pathogen
to prevent its spread and kill it)
o Oenocytoids or crystal cells:
§ Melanization
§ Contains high concentrations of
prophenoloxidase (helps with
melanization)
Hillyer Dev Comp which
Immunolcrystallizes
2016 inside the
cell
Produced in larval lymphoid organ
§ Storage and release of enzymes upon
Plasmatocytes (phagocytosis,
infection encapsulation, AMPs),
Lamellocytes (encapsulation,
à they’re all produced melanization)
in the larval lymphoid organ in the
Crystal cells or oenocytoids (melanization)
thorax of the insect, this organ is no longer present in adults
→ POcells
(no new immune = Pro-Phenol
are created)oxidase
but there can be proliferation of existing immune cells
Du Pasquier, Reference Module in Biomedical Sciences 2014
à arthropods
Circulating vshave a short
sessile life span:(immune
hemocytes there’s no function
need of continuous
+ O2) replenishment of immune cells

Hemocytes can proliferate upon infection in adult arthropods
Fat body (storage glycogen + AMP production) 2

4

, Arthropod immune system: hemolymph/hemocyte

2025-2026 Immunology Guy Caljon




• Circulating hemocytes: hemolymphHillyer
is pumped around
Dev Comp in the
Immunol 2016insect through contraction of the
primitive heart (muscular
Produced tube) à spread
in larval of immune
lymphoid cells and O2
organ
o This heart contains 7 abdominal segments: for each segment there’s an opening (ostia) in the
heart/tubePlasmatocytes (phagocytosis, encapsulation, AMPs),
o The heart Lamellocytes (encapsulation,
pumps hemolymph anterograde melanization)
(forward) and retrograde (backward) ensuring
Crystal
circulation cells or oenocytoids (melanization)

→ PO = Pro-Phenol oxidase
Sessile hemocytes: found in these ostia where they wait and capture pathogens trying to circulate =
Du Pasquier, Reference Module in Biome
functions as a filter for pathogens
Circulating vs sessile hemocytes (immune function + O2)
Hemocytes can proliferate upon infection in adult arthropods
Fat body (storage glycogen + AMP production)
4




IMMUNE PATHWAYS

• The innate immune system in arthropods shares similarities with vertebrates, relying on pathogen
recognition receptors (PRRs) to detect pathogen-associated molecular patterns (PAMPs)
• However, instead of an adaptive immune system, arthropods rely on highly efficient innate immune
pathways
• The three major pathways are:
1. Toll Pathway: mainly recognizes Fungi & Gram-positive bacteria
o Key components:
1) Recognition: Spätzle (cytokine) is activated during the infection
2) Signaling: Toll receptor (it does NOT directly recognize PAMPs)
3) Activation: signaling molecules are activated and induce the transcription of
antimicrobial peptides (AMPs)
o Mechanism: Spätzle (cytokine) is activated through a serine protease cascade triggered by
pathogen recognition à Spätzle then binds to the Toll receptor à this activates Tube & Pelle
(like MyD88 adaptor complex in humans) à phosphorylation of cactus (inhibitor) allows Rel1
(NF-kB like molecule) to migrate to the nucleus à transcription of AMPs, which fight
infections
o Regulation: highly regulated to prevent unnecessary immune activation




3

, 2025-2026 Immunology Guy Caljon

2. Imd pathway (immunodeficiency pathway): mainly recognizes Gram-negative bacteria &
protozoa
o Key components
1) Recognition: PGRP-LC (Peptidoglycan Recognition Protein) directly recognizes PAMPs
2) Activation: signaling molecules are activated and induce the transcription of AMP
genes
o Mechanism: PGRP-LC recognizes peptidoglycans from Gram-negative bacteria or protozoan
components à activates Imd & Fadd & Dredd which leads to the activation of Rel2 (NF-kB
like) that triggers the transcription of AMPs
o Application for vector control: if we introduce highly immunogenic Gram-negative bacteria
into an insect population, it could stimulate the Imd pathway, making insects more resistant
to protozoan infections (e.g., malaria parasites in mosquitoes)
3. Jak/Stat pathway (janus-activated kinase pathway): mainly recognizes viruses
o Key components
1) Recognition: Upd or Vago (IL-6 like cytokines) is activated during the infection & bind
Dome receptor
2) Signaling: Dome receptor (it does NOT directly recognize PAMPs)
3) Activation: signaling molecules are activated and induce the transcription of
antimicrobial peptides (AMPs)
o Mechanism: Upd or Vago are activated and bin the Dome receptor à this triggers Jak
Arthropod immune system
phosphorylation, activating Stat à transcription of AMPs, which fight infections
• These pathways are very regulated: constant inflammation will kill the insect
3 main immunity pathways, tightly controlled by negative regulators
Fungi, G+ G-, protozoa Virus



Proteolytic
activation IL-6 like + Vago




MyD88 adaptor


NF-kB like




Hillyer Dev Comp Immunol 2016
9




4

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