HIV (AIDS)

Last updated: February 22, 2023

HIV (AIDS)

Microbiology

Microbiology

Bacterial structure and functions
Staphylococcus epidermidis
Staphylococcus aureus
Staphylococcus saprophyticus
Streptococcus viridans
Streptococcus pyogenes (Group A Strep)
Streptococcus pneumoniae
Streptococcus agalactiae (Group B Strep)
Enterococcus
Clostridium perfringens
Clostridium difficile (Pseudomembranous colitis)
Clostridium botulinum (Botulism)
Clostridium tetani (Tetanus)
Bacillus cereus (Food poisoning)
Corynebacterium diphtheriae (Diphtheria)
Listeria monocytogenes
Bacillus anthracis (Anthrax)
Nocardia
Actinomyces israelii
Escherichia coli
Salmonella (non-typhoidal)
Salmonella typhi (typhoid fever)
Pseudomonas aeruginosa
Enterobacter
Klebsiella pneumoniae
Shigella
Proteus mirabilis
Yersinia enterocolitica
Legionella pneumophila (Legionnaires disease and Pontiac fever)
Serratia marcescens
Bacteroides fragilis
Yersinia pestis (Plague)
Vibrio cholerae (Cholera)
Helicobacter pylori
Campylobacter jejuni
Neisseria meningitidis
Neisseria gonorrhoeae
Moraxella catarrhalis
Francisella tularensis (Tularemia)
Bordetella pertussis (Whooping cough)
Brucella
Haemophilus influenzae
Haemophilus ducreyi (Chancroid)
Pasteurella multocida
Mycobacterium tuberculosis (Tuberculosis)
Mycobacterium leprae
Mycobacterium avium complex (NORD)
Mycoplasma pneumoniae
Chlamydia pneumoniae
Chlamydia trachomatis
Borrelia burgdorferi (Lyme disease)
Leptospira
Treponema pallidum (Syphilis)
Borrelia species (Relapsing fever)
Rickettsia rickettsii (Rocky Mountain spotted fever) and other Rickettsia species
Coxiella burnetii (Q fever)
Ehrlichia and Anaplasma
Gardnerella vaginalis (Bacterial vaginosis)
Viral structure and functions
Varicella zoster virus
Epstein-Barr virus (Infectious mononucleosis)
Human herpesvirus 8 (Kaposi sarcoma)
Herpes simplex virus
Human herpesvirus 6 (Roseola)
Adenovirus
Parvovirus B19
Human papillomavirus
BK virus (Hemorrhagic cystitis)
JC virus (Progressive multifocal leukoencephalopathy)
Poliovirus
Coxsackievirus
Rhinovirus
Hepatitis A and Hepatitis E virus
Influenza virus
Mumps virus
Measles virus
Human parainfluenza viruses
Respiratory syncytial virus
Yellow fever virus
Hepatitis C virus
Zika virus
West Nile virus
Norovirus
Rotavirus
Coronaviruses
HIV (AIDS)
Rabies virus
Rubella virus
Prions (Spongiform encephalopathy)
Candida
Plasmodium species (Malaria)
Trypanosoma cruzi (Chagas disease)
Protein synthesis inhibitors: Aminoglycosides
Antimetabolites: Sulfonamides and trimethoprim
Miscellaneous cell wall synthesis inhibitors
Antituberculosis medications
Protein synthesis inhibitors: Tetracyclines
Cell wall synthesis inhibitors: Penicillins
Miscellaneous protein synthesis inhibitors
Cell wall synthesis inhibitors: Cephalosporins
DNA synthesis inhibitors: Metronidazole
DNA synthesis inhibitors: Fluoroquinolones
Integrase and entry inhibitors
Nucleoside reverse transcriptase inhibitors (NRTIs)
Hepatitis medications
Protease inhibitors
Non-nucleoside reverse transcriptase inhibitors (NNRTIs)
Neuraminidase inhibitors
Herpesvirus medications
Azoles
Echinocandins
Miscellaneous antifungal medications
Anthelmintic medications
Antimalarials
Anti-mite and louse medications

Transcript

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Content Reviewers

HIV, or human immunodeficiency virus, is a virus that targets cells in the immune system.

Over time, the immune system begins to fail which is called immunodeficiency, and this increases the risk of infections and tumors that a healthy immune system would usually be able to fend off.

These complications are referred to as AIDS, or acquired immunodeficiency syndrome.

Now there are two distinct types of HIV—HIV-1 and HIV-2.

HIV-1 is the more commonly associated with AIDS in the US and worldwide, HIV-2 is more rare, and typically restricted to areas in western Africa and southern Asia.

HIV-2 is so uncommon that “HIV” almost always refers to HIV-1.

Alright HIV targets CD4+ cells, meaning cells that have this specific molecule called CD4 on their membrane. Macrophages, T-helper cells, and dendritic cells are all involved in the immune response and all have CD4 molecules; therefore they can be targeted by HIV.

The CD4 molecule helps these cells attach to and communicate with other immune cells, which is particularly important when the cells are launching attacks against foreign pathogens.

So this little molecule is pretty important for our immune system, but it’s also extremely important for HIV. HIV targets and attaches to the CD4 molecule via a protein called gp120 found on its envelope.

HIV then again uses gp120 to attach to another receptor, called a co-receptor.

HIV needs to bind to both the CD4 molecule and a coreceptor to get inside the cell.

The most common co-receptors that HIV uses are the CXCR4 co-receptor, which is found mainly on T-cells, or the CCR5 co-receptor which is found on T-cells, macrophages, monocytes, and dendritic cells.

These coreceptors are so important that some people with homogeneous genetic mutations in their CCR5 actually have resistance or immunity to HIV, since HIV can’t attach and get into the cell.

In fact, even heterozygous mutations which lead to fewer co-receptors on the cells, can make it harder for the virus to spread, and results in a slower disease progression.

For those without this mutation though, once HIV binds to CD4 and either CCR5 or CXCR4, it gains access to the cell.

HIV is a single-stranded, positive-sense, enveloped RNA retrovirus, meaning that it injects its single strand of RNA into the T-helper cell.

The “retro” part of retrovirus isn’t referring to its style, but refers to it needing to use an enzyme called reverse transcriptase to transcribe a complementary double-stranded piece of “proviral” DNA.

Proviral just means that it’s ready to be integrated into the host’s DNA, so it enters the T-helper cell’s nucleus and pops itself into the cell’s DNA, ready to be transcribed into new viruses, pretty sneaky, huh?

Well here’s the actual sneaky part—when the immune cells become activated, they start transcribing and translating proteins needed for the immune response.

Ironically, this means that whenever the immune cell is exposed to something that causes it to start up an immune response, like any infection, the immune cell ends up inadvertently transcribing and translating new HIV viruses, which bud off from the cell membrane to infect more cells. Very sneaky indeed!

One thing to know is that HIV is notorious for making errors when it replicates and that during an infection it can mutate to create slightly different strains of viruses.

These viruses are all still considered “HIV” but behave slightly differently from each other and target different cells in the host, in fact that host cell preference is called viral tropism.

So let’s start with HIV entering the body through sexual intercourse which is how it typically spreads from person to person.

At this early point, during what we call acute infection, the R5 strain of HIV, which bind to the CCR5 coreceptor will get into macrophages, dendritic cells, and T cells.

Usually dendritic cells hanging out in the epithelial or mucosal tissue where the virus entered the body, capture the virus and migrate to the lymph nodes, where a lot of immune cells live, and the R5 strain of HIV essentially has a field day, infecting T-helper cells, macrophages, and more dendritic cells, which leads to a big spike in HIV replication and the amount of virus found in the patient’s blood.

Patients typically experience flu-like or mononucleosis-like symptoms during the acute infection.

In response, the immune system mounts a counterattack, and starts to control the amount of viral replication, and the amount of virus in the blood declines to lower but still detectable levels by 12 weeks—at which point the patient enters the chronic or clinically-latent phase, which can last between 2 and 10 years.

If we also plot the amount of T cells alongside the amount of virus, we’ll see that they loosely mirror each other, which makes total sense, right?