Goals in Nutrition Science 2025-2030.
Already in its third edition, the Goals in Nutrition Science platform covers a five-year timeframe per volume, thus spanning 15 years from 2015 to 2030 (1, 2). This period aligns w... Read abstract →
Seitan is a plant derivative with 17 known flavor compounds. The most distinctive molecule is trans-2-nonenal. It pairs most strongly with kombu, sharing 9 flavor compounds. Seitan appears in 46 recipes, most commonly in african cuisine.
Compounds ranked by rarity — the higher the score, the more distinctive to this ingredient.
Of the ~226 molecules that drive perceived food aroma (Dunkel et al. 2014), Seitan's inventory contains 11. Most of the other 6 compounds are below detection threshold.
Generalist = appears in >25% of foods (Maillard / fermentation products). Individualist = appears in <5% of foods (carries signature notes). Threshold values are in clean water — the actual perception threshold in a food matrix can differ substantially.
How Seitan's 17 known compounds break down by aroma category. Percentages are of compounds with a known label.
4 of 17 are distinctive to seitan — they appear in under 10% of foods. The remainder are the background most foods share.
Ordered by measured impact in seitan — concentration against odour threshold where both are published, then by how distinctive the molecule is across the graph. Molecules measured here but not established as odorants sit below those that are.
Ranked by how often cooks actually use them together, across 453,403 recipes — the familiar answer first. Each pairing still carries its molecular score and shared-compound count; only the ORDER differs. Counts cover every characterised molecule the two ingredients have in common, not only the aroma-active ones, so they can exceed an ingredient’s aroma-compound count. For the chemistry-first view — where the surprising pairings live — see the molecular network below, the side-by-side comparison, or the Pairing Tool.
Seitan and its 10 closest compound-sharing relatives. Spoke thickness = shared compounds; circle size = that ingredient's own compound count. Drag to rearrange, scroll to zoom, click to open.
Compare Seitan side-by-side
Drawn from PubMed + Europe PMC + food-science journals. Click any title to read the full abstract on the original source.
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