Overview
This source page is a mechanical bulk-ingest record for a PDF in the research-pulls corpus. It preserves source-level identity, routeable product/analyte scope, and exact extracted numeric lines for later human or fresh-context audit. It does not derive HMTc thresholds, percentiles, or brand-by-brand comparisons.
Key numbers
The worker extracted the full PDF text with layout preservation twice and compared extraction hashes before commit. The following lines are copied from numeric/table-bearing regions of the PDF and retain the source units and wording where legible:
- including drought, salinity stress, lodging and heavy metal toxicity (8,9). A possible role of Si in metal
- effects of heavy metals in different crop species (Figure 1; Table 1; Supplementary Text 1). Several
- Table 1. Phytotoxicity of heavy metals on growth, development, and metabolism of different crop species.
- Table 2. External and internal silicon-mediated mechanisms for enhancing tolerance of plant’s against heavy metal toxicity.
- of heavy metals by at least 60%, which further suppressed metal uptake (26). Similarly, in banana,
- application accelerated the formation of more stable fractions of Cd and Zn (28).
- Si-decreased root to shoot translocation of Cd by 33%. Microscopic analysis performed by Shi et al. (29)
- stress (26). Furthermore, in Si-treated plants, less Mn was located in the symplast (<10%) and more Mn
- was bound to the cell wall (>90%) compared to control plants (about 50% in each compartment) (58).
- identified and functionally validated in different plant species (Table 3, Supplementary Text 1: Table
- family (Table 3; Figure S1). The information about the Lsi1 and Lsi2 was helpful to understand the
- different species could be utilized efficiently for the development of transgenic crop plants (Table S1).
- been reported, ranging from 0.1 to 10%, although these variations appear to be more limited at the
- shoots of different genotypes has been observed to range from 6.4 to 10.2 mg−1 (104). Similarly, in a
- Table 3. Influx/efflux Si transporters as well as their ortholog’s identified in different crop species.
Methods (brief)
- including drought, salinity stress, lodging and heavy metal toxicity (8,9). A possible role of Si in metal
Implications
This page makes the source discoverable for category-level evidence routing. Values remain source-native and should be used only with the stated matrix, species, basis, geography, and censoring context from the paper. The page does not convert total mercury to methylmercury or use total arsenic as inorganic arsenic.
Wiki pages this source may touch
- Fish — marine, non-predatory (sardines, anchovies, salmon, cod)
- Root-Vegetable Purees
- Cadmium
- Lead
- Arsenic
- Nickel
- Aluminum
- Chromium
Verification notes
- Identity check: DOI, raw handle, candidate cite-key, and SHA-256 were compared against existing
wiki/sources/pages before creation. - Full-PDF read:
pdftotext -layoutwas run on the full PDF twice; extracted text hashes matched before the page was written. - Numeric verification: numeric/table-bearing lines were selected mechanically from the verified extraction and preserved without unit conversion or rounding.
- Brand firewall: the worker skips PDFs when extracted numeric lines appear brand/manufacturer-sensitive; this page contains category-level or species-level evidence only.
- HMTc firewall: no threshold, percentile, pass/fail, clean/dirty, or certification math is stated.
Update history
The five most recent substantive edits to this page, classified major (evidence or structure moved), correction (a published value or statement was wrong and has been fixed), or minor (narrative rewritten without changing the underlying evidence). Each description is derived from what the edit did to this page; the linked commit is the authoritative record, routine regeneration passes are excluded, and the full version history lives in git. When DOI minting comes online (see schema docs), each entry below will also link to a version-pinned DataCite DOI.