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Concept · biology

Protein trafficking

Follow Protein trafficking — see important new research and changes in evidence.

Change log

What changed

Dated edits to this page's evidence: studies added or removed from a claim, claims added or withdrawn, and new explanations tagged here. Rewordings are not listed.

  • Sep 3, 2026

    • Concept page published

Protein trafficking is the directed movement of proteins through cellular compartments to their functional destinations.

Where proteins go determines function — trafficking errors underlie many disease mechanisms taught in biology.

Evidence

What the evidence shows

Drawn from 7 studies in this library. Each finding starts with a plain-language takeaway, then the denser detail. Supports means evidence for a finding; Challenges means evidence against a stated position; Qualifies marks scope with a short note on each study’s contribution. Challenged positions are labeled — they are not findings.

  • Multiple empirical papers in this library examine protein trafficking with mechanistic biological findings.

    3 studies
    1. 1How do proteins find plasmodesmata?
    2. 2Spike glycosylation and palmitoylation trafficking
    3. 3How does monoubiquitin turn down Rab5?

    Study comparison

    StudyRoleDesignNPopulationOutcome
    How do proteins find plasmodesmata?2008SupportsAnimal / in-vitroGFP localization and topology/knockout assays of PDLP plasmodesmal proteinsPlant cell-biology localization and trafficking assays — no single sample NArabidopsis and other plants expressing PDLP family proteinsPlasmodesmal targeting of PDLPs and effects on cell-to-cell GFP movement
    Spike glycosylation and palmitoylation trafficking2022SupportsAnimal / in-vitroMutagenesis and 2BP inhibition of SARS-CoV-2 spike glycosylation/palmitoylation traffickingCell-based spike trafficking/fusion assays — no single primary analytic NCells expressing wild-type or mutant SARS-CoV-2 spikeSpike intracellular trafficking, packaging, and ACE2-mediated fusion
    How does monoubiquitin turn down Rab5?2017SupportsAnimal / in-vitroMapped Rab5 monoubiquitination sites and tested chemically monoubiquitinated Rab5 functionCell-biochemistry of Rab5 ubiquitin sites K116/K140/K165 — no single sample NCultured cells expressing Rab5 variantsSite-specific monoubiquitination downregulating Rab5 endocytic signaling
  • PDLP1 family proteins target plasmodesmata; PDLP1a has cytoplasmic C-tail and apoplastic DUF26 domains; combined KOs increase GFP movement.

    1 study
    1. 1How do proteins find plasmodesmata?
  • LYQD mutants altered S2 glycosylation mobility; palmitoylation at cysteine clusters I/II was required for efficient S pp/virus production, Golgi/plasma-membrane targeting, and cell fusion.

    1 study
    1. 1Spike glycosylation and palmitoylation trafficking
  • Rab5 is monoubiquitinated at K116, K140, and K165; K140/K165 modifications downregulate the Rab5 endocytic pathway via disrupted partners and nucleotide conversion, while K116 has little localization effect.

    1 study
    1. 1How does monoubiquitin turn down Rab5?
  • MC4R homodimerizes and undergoes β-arrestin-2–driven endocytosis. Many variants impair trafficking even when cAMP looks normal; gain-of-function alleles link to obesity protection.

    1 study
    1. 1How MC4R variants scramble receptor trafficking

Open questions

Tensions and limits

Some items are genuine disagreements on the same question. Others mark different assays, populations, or outcomes — limits on how far one study travels — not a forced fight between papers.

  • Scope / different questions

    Systems and scales differ across protein trafficking studies (species, tissues, methods), so mechanisms should not be over-generalised.

    3 studies
    1. 1How do proteins find plasmodesmata?
    2. 2Spike glycosylation and palmitoylation trafficking
    3. 3How does monoubiquitin turn down Rab5?

    Study comparison

    StudyRoleDesignNPopulationOutcome
    How do proteins find plasmodesmata?2008SupportsAnimal / in-vitroGFP localization and topology/knockout assays of PDLP plasmodesmal proteinsPlant cell-biology localization and trafficking assays — no single sample NArabidopsis and other plants expressing PDLP family proteinsPlasmodesmal targeting of PDLPs and effects on cell-to-cell GFP movement
    Spike glycosylation and palmitoylation trafficking2022SupportsAnimal / in-vitroMutagenesis and 2BP inhibition of SARS-CoV-2 spike glycosylation/palmitoylation traffickingCell-based spike trafficking/fusion assays — no single primary analytic NCells expressing wild-type or mutant SARS-CoV-2 spikeSpike intracellular trafficking, packaging, and ACE2-mediated fusion
    How does monoubiquitin turn down Rab5?2017SupportsAnimal / in-vitroMapped Rab5 monoubiquitination sites and tested chemically monoubiquitinated Rab5 functionCell-biochemistry of Rab5 ubiquitin sites K116/K140/K165 — no single sample NCultured cells expressing Rab5 variantsSite-specific monoubiquitination downregulating Rab5 endocytic signaling

Common misconceptions

Exam-style questions

Short-answer questions that ask you to explain or compare, not recall.

What is Protein trafficking?

Protein trafficking is the directed movement of proteins through cellular compartments to their functional destinations.

Why does Protein trafficking matter for biology undergraduates?

Where proteins go determines function — trafficking errors underlie many disease mechanisms taught in biology.

The studies

7 studies in this library bear on Protein trafficking, ordered by citations.

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