| 2025 |
Emter R, et al. Decoding human olfaction by high heterologous expression of odorant receptors detecting signature odorants. Current Biology. |
PMID 41075782; DOI 10.1016/j.cub.2025.09.041 |
Engineers poorly expressed human ORs for improved cell-surface expression and sensitivity, helping overcome a major bottleneck in receptor–odorant mapping. |
| 2025 |
Odoemelam CS, Steuber V, Schmuker M. Computational modelling of olfactory receptors. BBA General Subjects. |
PMID 40441539; DOI 10.1016/j.bbagen.2025.130825 |
Comprehensive treatment of docking, MD, pharmacophores, virtual screening and ML for predicting OR structure and ligand interactions. |
| 2025 |
Ihara Y, et al. Predicting human olfactory perception by odorant structure and receptor activation profile. Chemical Senses. |
PMID 39888390; DOI 10.1093/chemse/bjaf002 |
Shows that combining molecular structure with OR activation profiles can help explain/predict similarities in human odor perception. |
| 2025 |
Choi D, et al. Flexible bioelectronic nose based on olfactory receptor/hydrogel hybrid nanostructures for direct detection of odorants in gas and liquid phases. Lab on a Chip. |
PMID 40445130; DOI 10.1039/D4LC00789A |
Demonstrates an OR-based flexible biosensor capable of detecting odorants across gas and liquid environments. |
| 2025 |
Wu F, et al. A bioelectronic nose with a flexible and implantable neural interface for odor detection and tobacco evaluation. Analyst. |
PMID 41170920; DOI 10.1039/D5AN00867K |
Uses neural recordings plus pattern recognition as a biologically integrated electronic nose, achieving odor discrimination at very low concentrations. |
| 2025 |
Chiera F, et al. An overview on olfaction in the biological, analytical, computational, and machine learning fields. Archiv der Pharmazie. |
PMID 39439128; DOI 10.1002/ardp.202400414 |
Particularly useful interdisciplinary review connecting odor chemistry, receptors, analytical techniques, computational modeling and ML. |
| 2024 |
de March CA, et al. Engineered odorant receptors illuminate the basis of odour discrimination. Nature. |
PMID 39478229; DOI 10.1038/s41586-024-08126-0 |
Uses engineered consensus ORs and cryo-EM structures to reveal molecular mechanisms by which odorants bind and activate ORs. |
| 2024 |
Dennler N, et al. High-speed odor sensing using miniaturized electronic nose. Science Advances. |
PMID 39504378; DOI 10.1126/sciadv.adp1764 |
Demonstrates millisecond-scale artificial odor sensing and temporal odor-plume decoding relevant to robotics and real-world machine olfaction. |
| 2024 |
Electronic Noses: From Gas-Sensitive Components and Practical Applications to Data Processing. |
PMID 39123852 |
Reviews sensing materials, sensor arrays, pattern recognition, drift correction and applications across food, health and environmental monitoring. |
| 2024 |
Abideen ZU, et al. Emerging trends in metal oxide-based electronic noses for healthcare applications: a review. Nanoscale. |
PMID 38680123; DOI 10.1039/D4NR00073K |
Reviews nanostructured metal-oxide sensor arrays and their translation into disease-oriented e-nose systems. |
| 2023 |
Lee BK, Mayhew EJ, Sanchez-Lengeling B, et al. A principal odor map unifies diverse tasks in olfactory perception. Science. |
PMID 37651511; DOI 10.1126/science.ade4401 |
Landmark graph-neural-network work producing a learned molecular representation—the Principal Odor Map—that predicts human odor perception. |
| 2023 |
Taisz I, et al. Generating parallel representations of position and identity in the olfactory system. Cell. |
PMID 37236194; DOI 10.1016/j.cell.2023.04.038 |
Shows how olfactory circuits can encode both odor identity and spatial information in parallel. |
| 2023 |
Wang B, et al. Development of an electronic nose to characterize water quality parameters and odor concentration of wastewater… Water Research. |
PMID 36940564; DOI 10.1016/j.watres.2023.119878 |
Illustrates translation of sensor-array olfaction into quantitative environmental odor and water-quality monitoring. |
| 2022 |
Kim C, et al. Artificial olfactory sensor technology that mimics the olfactory mechanism: a comprehensive review. Biomaterials Research. |
PMID 35986395; DOI 10.1186/s40824-022-00287-1 |
Excellent review connecting biological olfaction with MOS, electrochemical, SAW, QCM, polymer and bio-inspired electronic-nose technologies. |
| 2022 |
Yoshii T, et al. Development of an odorant sensor with a cell-free synthesized olfactory receptor and a graphene field-effect transistor. |
PMID 35286654; DOI 10.1007/s44211-022-00073-y |
Combines cell-free OR production with graphene FET transduction, an important direction for scalable receptor-based sensors. |
| 2022 |
Choi R, et al. Olfactory dysfunction and COVID-19. |
PMID 35505955; DOI 10.1016/j.otot.2022.04.010 |
Reviews SARS-CoV-2-related anosmia/parosmia while explaining peripheral olfactory organization and recovery mechanisms. |
| 2022 |
Prasad P, et al. Electronic nose and wireless sensor network for environmental monitoring application in pulp and paper industry: a review. |
PMID 36207610; DOI 10.1007/s10661-022-10479-w |
Connects e-nose sensing with distributed wireless environmental-monitoring architectures. |
| 2021 |
Ackels T, et al. Fast odour dynamics are encoded in the olfactory system and guide behaviour. Nature. |
PMID 33953395; DOI 10.1038/s41586-021-03514-2 |
Demonstrates that mammalian olfaction exploits millisecond-scale temporal structure in turbulent odor plumes. |
| 2020 |
Hayasaka T, et al. An electronic nose using a single graphene FET and machine learning for water, methanol, and ethanol. Microsystems & Nanoengineering. |
PMID 34567662; DOI 10.1038/s41378-020-0161-3 |
Shows that ML can extract discriminative odor information even from a single graphene transistor rather than a conventional large sensor array. |
| 2020 |
Whitcroft KL, Hummel T. Olfactory Dysfunction in COVID-19: Diagnosis and Management. JAMA. |
PMID 32432682; DOI 10.1001/jama.2020.8391 |
Concise influential clinical framework for diagnosis and management of COVID-associated smell loss. |
| 2020 |
Sedaghat AR, Gengler I, Speth MM. Olfactory Dysfunction: A Highly Prevalent Symptom of COVID-19 With Public Health Significance. |
PMID 32366160; DOI 10.1177/0194599820926464 |
Helped establish smell loss as an epidemiologically useful symptom of SARS-CoV-2 infection. |
| 2020 |
Speth MM, et al. Olfactory Dysfunction and Sinonasal Symptomatology in COVID-19. |
PMID 32423357; DOI 10.1177/0194599820929185 |
Characterized prevalence, timing and severity of smell dysfunction during early COVID-19. |
| 2020 |
Chung TWH, et al. Olfactory Dysfunction in Coronavirus Disease 2019 Patients: Observational Cohort Study and Systematic Review. |
PMID 32548209; DOI 10.1093/ofid/ofaa199 |
Combined objective smell testing, clinical evaluation and systematic review to characterize COVID-related OD. |
| 2019 |
van Geffen WH, et al. The electronic nose: emerging biomarkers in lung cancer diagnostics. Breathe. |
PMID 32280381; DOI 10.1183/20734735.0309-2019 |
Reviews breathprints/e-noses as non-invasive tools for lung-cancer detection and phenotyping. |
| 2019 |
Behera B, et al. Electronic nose: a non-invasive technology for breath analysis of diabetes and lung cancer patients. Journal of Breath Research. |
PMID 30620934; DOI 10.1088/1752-7163/aafc77 |
Demonstrates disease classification using breath VOC patterns and an electronic nose. |
| 2019 |
Orzechowska S, et al. Electronic Nose: Recent Developments in Gas Sensing and Molecular Mechanisms of Graphene Detection and Other Materials. |
PMID 31877901; DOI 10.3390/ma13010080 |
Useful review of graphene and other advanced materials for artificial olfactory sensing. |
| 2019 |
Liu YJ, Zeng M, Meng QH. Electronic nose using a bio-inspired neural network modeled on mammalian olfactory system for Chinese liquor classification. |
PMID 30831708; DOI 10.1063/1.5064540 |
Explicitly translates mammalian olfactory processing principles into a neural-network architecture for machine olfaction. |
| 2018 |
Maßberg D, Hatt H. Human Olfactory Receptors: Novel Cellular Functions Outside of the Nose. Physiological Reviews. |
PMID 29897292; DOI 10.1152/physrev.00013.2017 |
Major review establishing the importance of ectopic ORs in tissues including skin, lung, heart, gut and reproductive organs. |
| 2018 |
Dewan A, et al. Single olfactory receptors set odor detection thresholds. Nature Communications. |
PMID 30038239; DOI 10.1038/s41467-018-05129-0 |
Demonstrates that individual receptor types can determine behavioral sensitivity thresholds for specific odorants. |
| |
|
|
|