| Aspect | Key finding for human EIF3J/eIF3j | Evidence/details | Recent relevance (2022-2024) | Source / year / URL |
|---|---|---|---|---|
| Gene/protein identity | EIF3J encodes human eukaryotic translation initiation factor 3 subunit J (eIF3j), an eIF3-associated translation factor rather than a stable core eIF3 subunit | Reviews and assembly studies distinguish mammalian eIF3 as a 12-subunit complex and describe eIF3j as loosely associated/substoichiometric, often treated as an eIF3-associated factor rather than a bona fide core subunit (pqac-00000003, pqac-00000004) | Still the prevailing model used in current eIF3 literature and structural studies | Wagner et al., 2016, Nucleic Acids Research, https://doi.org/10.1093/nar/gkw972 ; Valášek et al., 2017, Nucleic Acids Research, https://doi.org/10.1093/nar/gkx805 |
| Primary molecular function | Non-catalytic ribosome-associated translation factor that modulates mRNA recruitment, translation initiation complex dynamics, and ribosome recycling | No enzymatic activity is described; instead, eIF3j acts through protein- and ribosome-binding interactions that alter 40S/mRNA/factor configurations (pqac-00000019, pqac-00000006) | Current understanding emphasizes regulatory rather than catalytic function | Sokabe & Fraser, 2017, PNAS, https://doi.org/10.1073/pnas.1620426114 ; Young & Guydosh, 2022, BioEssays, https://doi.org/10.1002/bies.202100269 |
| Subunit association within eIF3 system | eIF3j is substoichiometric and transiently associated with holo-eIF3 | eIF3j binds the eIF3b RRM and is not required for the stable PCI/MPN octamer or yeast-like core assembly; this supports its classification as peripheral/associated (pqac-00000003, pqac-00000009) | Important for interpreting modern cryo-EM structures, which typically focus on core eIF3 architecture | Wagner et al., 2016, https://doi.org/10.1093/nar/gkw972 ; Valášek et al., 2017, https://doi.org/10.1093/nar/gkx805 |
| Domain architecture | Contains an eIF3j-specific domain and functionally important N- and C-terminal regions; the N-terminus mediates factor interactions and the C-terminus contributes to RNA-regulatory functions | Structural review cites NMR information for the interaction of human eIF3j residues 35-69 with human eIF3b RRM; 2022 circRNA work found the C-terminus essential for inhibitory activity on circRNA translation (pqac-00000009, pqac-00000001) | The C-terminal regulatory role gained new attention in 2022 | Valášek et al., 2017, https://doi.org/10.1093/nar/gkx805 ; Song et al., 2022, Nucleic Acids Research, https://doi.org/10.1093/nar/gkac980 |
| Direct interaction partner(s) | Interacts with eIF3b and functionally couples to eIF3 and ABCE1/RLI1 | Human eIF3j N-terminal peptide contacts eIF3b RRM; ribosome recycling literature and review evidence indicate physical/functional interplay with ABCE1 and eIF3 on post-termination ribosomes (pqac-00000009, pqac-00000006) | These interactions underpin newer models of initiation-recycling continuity | Valášek et al., 2017, https://doi.org/10.1093/nar/gkx805 ; Young & Guydosh, 2022, https://doi.org/10.1002/bies.202100269 |
| Ribosome binding site | Binds the 40S small subunit near the mRNA entry channel and A-site; competes anti-cooperatively with accommodated mRNA | Reconstituted human systems show high-affinity binding of eIF3j to the 43S PIC/40S and a marked reduction in affinity after mRNA recruitment; this is interpreted as reporting mRNA accommodation into the decoding site/entry channel (pqac-00000019) | Remains a key mechanistic framework for understanding eIF3j action in human initiation | Sokabe & Fraser, 2017, https://doi.org/10.1073/pnas.1620426114 |
| Role in cap-dependent initiation | Regulates an early step of mRNA recruitment to the 43S PIC and is displaced as mRNA becomes fully accommodated | Human reconstitution experiments indicate that eIF4F/eIF4A/eIF4B-dependent mRNA recruitment lowers eIF3j affinity for the 43S PIC; short RNAs that do not extend into the entry channel fail to displace eIF3j (pqac-00000019) | Supports the current view that eIF3j marks and/or gates mRNA entry into the 40S channel | Sokabe & Fraser, 2017, https://doi.org/10.1073/pnas.1620426114 |
| Dependence on eIF4A/ATP during initiation | Full reduction in eIF3j affinity during mRNA recruitment requires ATP-dependent but unwinding-independent eIF4A activity | This suggests eIF3j senses a regulated conformational transition of the human 43S PIC rather than only RNA helicase action (pqac-00000019) | Conceptually reinforced by 2024 human 48S structures showing factor-rich organization around entry and exit channels | Sokabe & Fraser, 2017, https://doi.org/10.1073/pnas.1620426114 ; Querido et al., 2024, Nature Structural & Molecular Biology, https://doi.org/10.1038/s41594-023-01196-0 |
| Role in ribosome recycling | Promotes efficient post-termination recycling, especially by enhancing ABCE1/RLI1-mediated subunit splitting and/or subsequent 40S recycling transitions | Reviews summarize yeast/human evidence that eIF3j improves ABCE1/RLI1 recycling efficiency, binds when one ABCE1 nucleotide-binding site is partially open, and may help control post-splitting 40S states (pqac-00000006, pqac-00000005) | Ribosome recycling remains one of the most important non-initiation functions ascribed to eIF3j in recent synthesis articles | Young & Guydosh, 2022, https://doi.org/10.1002/bies.202100269 |
| Site of action in recycling | Cytoplasmic post-termination 80S/40S ribosome complexes | Reconstituted and structural/review evidence places eIF3j on ribosomal complexes after termination, participating with ABCE1 and canonical initiation/recycling factors on the small subunit (pqac-00000006, pqac-00000005) | Helps explain functional continuity between recycling and re-initiation-capable 40S states | Young & Guydosh, 2022, https://doi.org/10.1002/bies.202100269 |
| Role in translation termination fidelity / readthrough | eIF3j has been linked to stop-codon decoding outcomes via the broader eIF3 network; loss of eIF3j/HCR1 increased readthrough in yeast models | Review of foundational work notes that eIF3 and eIF3j associate with terminating ribosomes and influence stop-codon readthrough/termination dynamics, though much mechanistic evidence comes from yeast systems (pqac-00000017, pqac-00000016) | Useful as evolutionary/mechanistic context, but less directly established for human EIF3J than initiation/recycling roles | Valášek et al., 2017, https://doi.org/10.1093/nar/gkx805 |
| Role in circular RNA translation | eIF3j can act as a negative regulator of a subset of circRNA translation by promoting eIF3 dissociation from circRNA templates | In a 2022 systematic screen, eIF3j was the strongest inhibitor among tested eIFs; binding of eIF3j to circSfl promoted dissociation of eIF3, and the eIF3j C-terminus plus a circRNA UTR regulon were required (pqac-00000001, pqac-00000008) | One of the clearest newly described regulatory activities relevant to 2022-2024 literature | Song et al., 2022, https://doi.org/10.1093/nar/gkac980 ; Hwang & Kim, 2024 review, https://doi.org/10.1038/s12276-024-01220-3 |
| Subcellular localization | Predominantly cytoplasmic site of action, consistent with roles in mRNA translation, ribosome binding, and ribosome recycling | eIF3 subunits in mammalian cells show predominantly cytoplasmic localization, and eIF3j functions are consistently described on cytoplasmic 40S/43S/80S complexes rather than nuclear pathways (pqac-00000013, pqac-00000019) | No strong evidence in the retrieved set for a primary non-cytoplasmic human EIF3J role | Duan et al., 2023, The EMBO Journal, https://doi.org/10.15252/embj.2022112362 ; Sokabe & Fraser, 2017, https://doi.org/10.1073/pnas.1620426114 |
| Structural context in modern human initiation complexes | Modern 48S cryo-EM maps emphasize eIF3 architecture at both mRNA entry and exit sides of the 40S, providing context for eIF3j’s gatekeeping position even when eIF3j itself is not the focus of the map | Human 48S structure shows eIF3 octamer/core plus peripheral subunits surrounding the mRNA path and a second eIF4A at the entry site, supporting a framework in which entry-channel factors such as eIF3j regulate mRNA accommodation (pqac-00000010) | Important 2024 context for integrating older eIF3j biochemical data with current structural models | Querido et al., 2024, https://doi.org/10.1038/s41594-023-01196-0 |
| Viral/pathogen interface relevance | eIF3j-binding surfaces on the 40S entry region are functionally important enough to be targeted or competed by pathogens/viral factors | SARS-CoV-2 Nsp1 was proposed to compete with eIF3j for 40S binding and weaken eIF3 association; this supports the biological importance of eIF3j’s 40S interface (pqac-00000015) | Highlights translational control interfaces relevant to infection biology | Yuan et al., 2020, Molecular Cell, https://doi.org/10.1016/j.molcel.2020.10.034 |
| Human tissue expression pattern | EIF3J transcript abundance varies across human tissues rather than being uniformly invariant | Transcriptomic survey identified relative tissue differences, including lower expression in ovary and higher expression in brain/liver/testis-related comparisons (pqac-00000000) | Provides recent systems-level context, although not direct functional proof | Anisimova et al., 2023, International Journal of Molecular Sciences, https://doi.org/10.3390/ijms24098361 |
| Current consensus summary | Human EIF3J/eIF3j is best annotated as a peripheral, non-enzymatic 40S/eIF3-associated regulator that helps coordinate mRNA entry, initiation-complex remodeling, and ribosome recycling, with emerging transcript-selective inhibitory functions on circRNA translation | This synthesis is supported by assembly studies, structural reviews, biochemical reconstitution, recycling reviews, and newer circRNA-focused work (pqac-00000003, pqac-00000004, pqac-00000019, pqac-00000005, pqac-00000001) | Most robust experimentally supported functions remain in cytoplasmic translation control rather than signaling or catalysis | Wagner et al., 2016, https://doi.org/10.1093/nar/gkw972 ; Valášek et al., 2017, https://doi.org/10.1093/nar/gkx805 ; Sokabe & Fraser, 2017, https://doi.org/10.1073/pnas.1620426114 ; Young & Guydosh, 2022, https://doi.org/10.1002/bies.202100269 ; Song et al., 2022, https://doi.org/10.1093/nar/gkac980 |


*Table: This table summarizes the main experimentally supported functions and structural features of human EIF3J/eIF3j, emphasizing its 40S/eIF3-associated roles in translation initiation and ribosome recycling. It also highlights newer findings from 2022-2024, including selective inhibition of circRNA translation and modern structural context.*