Plant roots play a critical role in taking up, selecting, enriching and retaining a range of different mineral elements thereby supplying distant plant tissues with nutrients while sequestering excessive amounts of metals. To execute such element-specific functions, a range of ion transporters present at roots mediate the uptake, efflux and intracellular compartmentalization of different mineral elements. Most ion transporters show characteristic tissue and cell type-specific localization patterns, which can be altered in response to internal signalling or external cues.
To fully understand the role of the multitude ion transporters and transport pathways acting in roots, it is necessary to determine their contribution to element distribution in cells and tissues.
The best method for simultaneous quantification of multiple elements is inductively couple plasma mass spectrometry (ICP-MS). However, ICP-MS is still largely restricted to the analysis of whole-tissues instead of single tissues or specific cell types. Overcoming this limitation would allow to simultaneously map the distribution of several mineral elements along different root cell layers, a critical step to fully understand how roots protect highly sensitive stem cells from toxic elements but share essential and beneficial elements with aboveground parts.
“With this in mind, we developed a method in which distinct cell types isolated from roots of various reporter lines are separated via fluorescence-activated cell sorting prior to elemental analysis with ICP-MS”, says the first author of the study. “Our new method enabled us to determine the concentration of up to 11 mineral elements in different cell types, and to explore the consequences of perturbed xylem loading or altered nutrient availabilities at high spatial resolution.”
The researchers used the new FACS-ICP-MS method to reveal significant cell type-specific element distribution and the existence of a steep concentration gradient between outer and inner cell layers in roots. “Furthermore, the cellular concentration ranges for most macro- and micronutrients estimated with our method can serve as reference for future studies”, emphasises the senior author.
The method also helped the researchers to identify a cell type-specific enrichment of manganese in roots of plants exposed to iron-limiting conditions. By installing a manganese sequestration mechanism in specific cell types, the researchers uncovered that root hairs play a critical role in retaining the excess manganese taken up by iron-deficient plants, thereby preventing that toxic concentrations of manganese build up in shoots.
“Our results highlight the importance of the particular “topographical” placement of ion transporters for directing radial movement of ions destined to shoots or for efficient metal sequestration in roots”, says the author.
“The possibility to combine our method with transcriptomics and to develop it further toward single cell ICP-MS offers the possibility to investigate transcriptome-ionome networks at very high spatial resolution. This knowledge is critical to understand and manipulate transport pathways in order to increase nutrient use efficiency while simultaneously preventing accumulation of toxic elements in aboveground tissues.”
https://www.nature.com/articles/s41467-023-38880-0
http://sciencemission.com/site/index.php?page=news&type=view&id=publications%2Fcell-type-specific_7&filter=22
Cell type-specific mapping of ion distribution in Arabidopsis thaliana roots
- 1,058 views
- Added
Latest News
AI based histologic biomark…
By newseditor
Posted 30 Nov
Repairing nerve cells after…
By newseditor
Posted 30 Nov
A gene regulating fat stora…
By newseditor
Posted 30 Nov
Leveraging CRISPR to target…
By newseditor
Posted 30 Nov
Multi-chamber heart organoi…
By newseditor
Posted 29 Nov
Other Top Stories
Fasting-mimicking diet may reverse diabetes
Read more
Long-term stress linked to higher levels of obesity
Read more
Linking high sugar levels to Alzheimer's disease
Read more
How obesity drives inflammation
Read more
Bone-derived hormone suppresses appetite in mice
Read more
Protocols
Personalized drug screening…
By newseditor
Posted 30 Nov
Multi-chamber cardioids unr…
By newseditor
Posted 29 Nov
Microfluidic-based skin-on-…
By newseditor
Posted 28 Nov
Biology-guided deep learnin…
By newseditor
Posted 26 Nov
Accurate prediction of prot…
By newseditor
Posted 25 Nov
Publications
Pleiotrophin ameliorates ag…
By newseditor
Posted 30 Nov
Mitf is a Schwann cell sens…
By newseditor
Posted 30 Nov
OsHLP1 is an endoplasmic-re…
By newseditor
Posted 30 Nov
Probiotic treatment with Bi…
By newseditor
Posted 30 Nov
Metabolic immunity against…
By newseditor
Posted 30 Nov
Presentations
Hydrogels in Drug Delivery
By newseditor
Posted 12 Apr
Lipids
By newseditor
Posted 31 Dec
Cell biology of carbohydrat…
By newseditor
Posted 29 Nov
RNA interference (RNAi)
By newseditor
Posted 23 Oct
RNA structure and functions
By newseditor
Posted 19 Oct
Posters
A chemical biology/modular…
By newseditor
Posted 22 Aug
Single-molecule covalent ma…
By newseditor
Posted 04 Jul
ASCO-2020-HEALTH SERVICES R…
By newseditor
Posted 23 Mar
ASCO-2020-HEAD AND NECK CANCER
By newseditor
Posted 23 Mar
ASCO-2020-GENITOURINARY CAN…
By newseditor
Posted 23 Mar