» Authors » Timothy J Tschaplinski

Timothy J Tschaplinski

Explore the profile of Timothy J Tschaplinski including associated specialties, affiliations and a list of published articles. Areas
Snapshot
Articles 144
Citations 4018
Followers 0
Related Specialties
Top 10 Co-Authors
Published In
Affiliations
Soon will be listed here.
Recent Articles
1.
Mottiar Y, Tschaplinski T, Ralph J, Mansfield S
Plant Direct . 2025 Mar; 9(3):e70053. PMID: 40084040
Chorismate is an important branchpoint metabolite in the biosynthesis of lignin and a wide array of metabolites in plants. Chorismate mutase (CM), the enzyme responsible for transforming chorismate into prephenate,...
2.
Groover A, Holbrook N, Polle A, Sala A, Medlyn B, Brodersen C, et al.
New Phytol . 2024 Dec; 245(5):1817-1832. PMID: 39690524
Droughts of increasing severity and frequency are a primary cause of forest mortality associated with climate change. Yet, fundamental knowledge gaps regarding the complex physiology of trees limit the development...
3.
Ployet R, Feng K, Zhang J, Baxter I, Glasgow D, Andrews H, et al.
Front Plant Sci . 2024 Dec; 15:1450646. PMID: 39670268
The ionome represents elemental composition in plant tissues and can be an indicator of nutrient status as well as overall plant performance. Thus, identifying genetic determinants governing elemental uptake and...
4.
Christel S, Carrell A, Hochanadel L, Villalobos Solis M, Abraham P, Jawdy S, et al.
mBio . 2024 Dec; 16(1):e0301624. PMID: 39660924
Horizontal gene transfer (HGT) is a fundamental evolutionary process that plays a key role in bacterial evolution. The likelihood of a successful transfer event is expected to depend on the...
5.
Davin M, Thompson R, Giannone R, Mendelson L, Carper D, Martin M, et al.
Biotechnol Biofuels Bioprod . 2024 Sep; 17(1):119. PMID: 39227857
Background: Clostridium autoethanogenum is an acetogenic bacterium that autotrophically converts carbon monoxide (CO) and carbon dioxide (CO) gases into bioproducts and fuels via the Wood-Ljungdahl pathway (WLP). To facilitate overall...
6.
Sacko O, Engle N, Tschaplinski T, Kumar S, Lee J
Bioresour Bioprocess . 2024 Apr; 9(1):2. PMID: 38647802
Background: Biochar ozonization was previously shown to dramatically increase its cation exchange capacity, thus improving its nutrient retention capacity. The potential soil application of ozonized biochar warrants the need for...
7.
Simon S, Furches A, Chhetri H, Evans L, Abeyratne C, Jones P, et al.
New Phytol . 2024 Mar; 242(3):1307-1323. PMID: 38488269
Community genetics seeks to understand the mechanisms by which natural genetic variation in heritable host phenotypes can encompass assemblages of organisms such as bacteria, fungi, and many animals including arthropods....
8.
Liu Y, Yuan G, Hassan M, Abraham P, Mitchell J, Jacobson D, et al.
Biodes Res . 2023 Oct; 2022:9863496. PMID: 37850147
Plants adapt to their changing environments by sensing and responding to physical, biological, and chemical stimuli. Due to their sessile lifestyles, plants experience a vast array of external stimuli and...
9.
Yang X, Liu D, Lu H, Weston D, Chen J, Muchero W, et al.
Biodes Res . 2023 Oct; 2021:9798714. PMID: 37849951
A grand challenge facing society is climate change caused mainly by rising CO concentration in Earth's atmosphere. Terrestrial plants are linchpins in global carbon cycling, with a unique capability of...
10.
Lu H, Yuan G, Strauss S, Tschaplinski T, Tuskan G, Chen J, et al.
Biodes Res . 2023 Oct; 2020:9078303. PMID: 37849903
For decades, plants have been the subject of genetic engineering to synthesize novel, value-added compounds. Polyhydroxyalkanoates (PHAs), a large class of biodegradable biopolymers naturally synthesized in eubacteria, are among the...