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1.
Int J Mol Sci ; 25(11)2024 May 24.
Article in English | MEDLINE | ID: mdl-38891921

ABSTRACT

The involvement of the microRNA miR165a in the light-dependent mechanisms of regulation of target genes in maize (Zea mays) has been studied. The light-induced change in the content of free miR165a was associated with its binding by the AGO10 protein and not with a change in the rate of its synthesis from the precursor. The use of knockout Arabidopsis plants for the phytochrome A and B genes demonstrated that the presence of an active form of phytochrome B causes an increase in the level of the RNA-induced silencing miR165a complex, which triggers the degradation of target mRNAs. The two fractions of vesicles from maize leaves, P40 and P100 that bind miR165a, were isolated by ultracentrifugation. The P40 fraction consisted of larger vesicles of the size >0.170 µm, while the P100 fraction vesicles were <0.147 µm. Based on the quantitative PCR data, the predominant location of miR165a on the surface of extracellular vesicles of both fractions was established. The formation of the active form of phytochrome upon the irradiation of maize plants with red light led to a redistribution of miR165a, resulting in an increase in its proportion inside P40 vesicles and a decrease in P100 vesicles.


Subject(s)
Light , MicroRNAs , Phytochrome , Plant Leaves , Signal Transduction , Zea mays , Zea mays/genetics , Zea mays/metabolism , Zea mays/radiation effects , MicroRNAs/genetics , MicroRNAs/metabolism , Plant Leaves/metabolism , Plant Leaves/genetics , Plant Leaves/radiation effects , Phytochrome/metabolism , Phytochrome/genetics , Gene Expression Regulation, Plant , Arabidopsis/genetics , Arabidopsis/metabolism , Arabidopsis/radiation effects , Phytochrome A/metabolism , Phytochrome A/genetics , Extracellular Vesicles/metabolism , Extracellular Vesicles/genetics , Phytochrome B/metabolism , Phytochrome B/genetics
3.
Biosystems ; 241: 105201, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38642880

ABSTRACT

Ervin Bauer (1890-1938) outlined the paradigm of theoretical biology from the perspective of biophysics and bioenergetics. His molecular-based biological theory is centered on the principle of sustainable non-equilibrium, which is continuously produced and maintained by all biological systems throughout their life. Ervin Bauer became the victim of Stalin's Great Terror. Here we present two of the fundamental works of Ervin Bauer in English translation: the paper "The definition of living beings on the basis of their thermodynamic properties, and the fundamental biological principles that follow from it" published in Naturwissenschaften (1920) and the excerpts from his magnum opus "Theoretical Biology" (1935). These works became a bibliographical rarity. A complete English translation of "Theoretical Biology" is an important task for the future.


Subject(s)
Biology , History, 20th Century , History, 19th Century , Biology/history , Thermodynamics , Humans , Biophysics/history
4.
J Plant Physiol ; 297: 154241, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38640547

ABSTRACT

Nitrogen (N) is an essential nutrient for plants, and the sources from which it is obtained can differently affect their entire development as well as stress responses. Distinct inorganic N sources (nitrate and ammonium) can lead to fluctuations in the nitric oxide (NO) levels and thus interfere with nitric oxide (NO)-mediated responses. These could lead to changes in reactive oxygen species (ROS) homeostasis, hormone synthesis and signaling, and post-translational modifications of key proteins. As the consensus suggests that NO is primarily synthesized in the reductive pathways involving nitrate and nitrite reduction, it is expected that plants grown in a nitrate-enriched environment will produce more NO than those exposed to ammonium. Although the interplay between NO and different N sources in plants has been investigated, there are still many unanswered questions that require further elucidation. By building on previous knowledge regarding NO and N nutrition, this review expands the field by examining in more detail how NO responses are influenced by different N sources, focusing mainly on root development and abiotic stress responses.


Subject(s)
Nitric Oxide , Nitrogen , Plant Roots , Ammonium Compounds/metabolism , Nitrates/metabolism , Nitric Oxide/metabolism , Nitrogen/metabolism , Plant Roots/growth & development , Plant Roots/physiology , Plants/metabolism , Reactive Oxygen Species/metabolism , Stress, Physiological
5.
Int J Mol Sci ; 25(6)2024 Mar 13.
Article in English | MEDLINE | ID: mdl-38542231

ABSTRACT

Plant glycerate kinase (GK) was previously considered an exclusively chloroplastic enzyme of the glycolate pathway (photorespiration), and its sole predicted role was to return most of the glycolate-derived carbon (as glycerate) to the Calvin cycle. However, recent discovery of cytosolic GK revealed metabolic links for glycerate to other processes. Although GK was initially proposed as being solely regulated by substrate availability, subsequent discoveries of its redox regulation and the light involvement in the production of chloroplastic and cytosolic GK isoforms have indicated a more refined regulation of the pathways of glycerate conversion. Here, we re-evaluate the importance of GK and emphasize its multifaceted role in plants. Thus, GK can be a major player in several branches of primary metabolism, including the glycolate pathway, gluconeogenesis, glycolysis, and C4 metabolism. In addition, recently, the chloroplastic (but not cytosolic) GK isoform was implicated as part of a light-dependent plant immune response to pathogen attack. The origins of glycerate are also discussed here; it is produced in several cell compartments and undergoes huge fluctuations depending on light/dark conditions. The recent discovery of the vacuolar glycerate transporter adds yet another layer to our understanding of glycerate transport/metabolism and that of other two- and three-carbon metabolites.


Subject(s)
Gluconeogenesis , Phosphotransferases (Alcohol Group Acceptor) , Photosynthesis , Photosynthesis/physiology , Plants/metabolism , Plant Immunity , Glycolates , Carbon/metabolism
6.
J Plant Physiol ; 294: 154195, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38377939

ABSTRACT

We discuss the role of epigenetic changes at the level of promoter methylation of the key enzymes of carbon metabolism in the regulation of respiration by light. While the direct regulation of enzymes via modulation of their activity and post-translational modifications is fast and readily reversible, the role of cytosine methylation is important for providing a prolonged response to environmental changes. In addition, adenine methylation can play a role in the regulation of transcription of genes. The mitochondrial and extramitochondrial forms of several enzymes participating in the tricarboxylic acid cycle and associated reactions are regulated via promoter methylation in opposite ways. The mitochondrial forms of citrate synthase, aconitase, fumarase, NAD-malate dehydrogenase are inhibited while the cytosolic forms of aconitase, fumarase, NAD-malate dehydrogenase, and the peroxisomal form of citrate synthase are activated. It is concluded that promoter methylation represents a universal mechanism of the regulation of activity of respiratory enzymes in plant cells by light. The role of the regulation of the mitochondrial and cytosolic forms of respiratory enzymes in the operation of malate and citrate valves and in controlling the redox state and balancing the energy level of photosynthesizing plant cells is discussed.


Subject(s)
Fumarate Hydratase , Malate Dehydrogenase , Malate Dehydrogenase/genetics , Malate Dehydrogenase/metabolism , Citrate (si)-Synthase/genetics , Citrate (si)-Synthase/metabolism , Fumarate Hydratase/genetics , Tricarboxylic Acids/metabolism , Citric Acid Cycle , Plants/genetics , Plants/metabolism , Aconitate Hydratase/genetics , Aconitate Hydratase/metabolism , DNA Methylation/genetics , Respiration
7.
Entropy (Basel) ; 26(1)2023 Dec 31.
Article in English | MEDLINE | ID: mdl-38248169

ABSTRACT

Classical thermodynamics employs the state of thermodynamic equilibrium, characterized by maximal disorder of the constituent particles, as the reference frame from which the Second Law is formulated and the definition of entropy is derived. Non-equilibrium thermodynamics analyzes the fluxes of matter and energy that are generated in the course of the general tendency to achieve equilibrium. The systems described by classical and non-equilibrium thermodynamics may be heuristically useful within certain limits, but epistemologically, they have fundamental problems in the application to autopoietic living systems. We discuss here the paradigm defined as a relational biological thermodynamics. The standard to which this refers relates to the biological function operating within the context of particular environment and not to the abstract state of thermodynamic equilibrium. This is defined as the stable non-equilibrium state, following Ervin Bauer. Similar to physics, where abandoning the absolute space-time resulted in the application of non-Euclidean geometry, relational biological thermodynamics leads to revealing the basic iterative structures that are formed as a consequence of the search for an optimal coordinate system by living organisms to maintain stable non-equilibrium. Through this search, the developing system achieves the condition of maximization of its power via synergistic effects.

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