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Metabolic regulation of hematopoiesis

Metabolic regulation of hematopoiesis is a science topic covered in the lgStudy science library. This page brings together a partial reference excerpt, illustrations, worked examples, real-world applications and a short study plan, so you can understand Metabolic regulation of hematopoiesis rather than just read about it. In short: Hematopoietic stem cells (HSCs) have high regenerative potentials and are capable of differentiating into all blood and immune system cells. Despite this impressive potential, HSCs have limited potential to produce more multipotent stem cells.

Metabolic regulation of hematopoiesis — main illustration
Metabolic regulation of hematopoiesis — illustration

Key takeaways

  • Metabolic regulation of hematopoiesis belongs to science; place it in that map before memorising details.
  • Learn the definition first, then one example that makes the definition concrete.
  • Connect Metabolic regulation of hematopoiesis to a quantity you can measure, compute or draw — that is where exam questions come from.
  • Reproduce the core statement of Metabolic regulation of hematopoiesis from memory before moving on to harder problems.

Reference excerpt

Hematopoietic stem cells (HSCs) have high regenerative potentials and are capable of differentiating into all blood and immune system cells. Despite this impressive potential, HSCs have limited potential to produce more multipotent stem cells. This limited self-renewal potential is protected through maintenance of a quiescent state in HSCs. Stem cells maintained in this quiescent state are known as long term HSCs (LT-HSCs). During quiescence, HSCs maintain a low level of metabolic activity and do not divide. LT-HSCs can be signaled to proliferate, producing either myeloid or lymphoid progenitors. Production of these progenitors does not come without a cost: When grown under laboratory conditions that induce proliferation, HSCs lose their ability to divide and produce new progenitors. Therefore, understanding the pathways that maintain proliferative or quiescent states in HSCs could reveal novel pathways to improve existing therapeutics involving HSCs.

Background All adult stem cells can undergo two types of division: symmetric and asymmetric. When a cell undergoes symmetric division, it can either produce two differentiated cells or two new stem cells. When a cell undergoes asymmetric division, it produces one stem and one differentiated cell. Production of new stem cells is necessary to maintain this population within the body. Like all cells, hematopoietic stem cells undergo metabolic shifts to meet their bioenergetic needs throughout development. These metabolic shifts play an important role in signaling, generating biomass, and protecting the cell from damage. Metabolic shifts also guide development in HSCs and are one key factor in determining if an HSC will remain quiescent, symmetrically divide, or asymmetrically divide. As mentioned above, quiescent cells maintain a low level of oxidative phosphorylation and primarily rely on glycolysis to generate energy. Fatty acid beta-oxidation has been shown to influence fate decisions in HSCs. In contrast, proliferative HSCs primarily depend on oxidative phosphorylation. This switch is accompanied by an increase in intracellular reactive oxygen species (ROS) levels and increased anabolic activity in cells

Maintenance of quiescence

Glycolysis and Hif signaling It is well understood that quiescent HSCs have very low levels of metabolic activity. LT-HSCs primarily rely on anaerobic glycolysis to generate energy. Unlike other types of HSCs, little energy is produced from mitochondrial oxidative respiration. The reason from this is likely two-fold: LT-HSCs reside within the hypoxic niche of the bone marrow, and low levels of mitochondrial respiration protect quiescent cells from damage induced ROS. When excessive levels of ROS are present, LT-HSCs undergo differentiation or apoptosis, losing their ability to self-renew. This suggests that dependence on glycolysis is not only an environmental adaptation, but also a necessity for LT-HSCs to preserve their stemness. LT-HSC preference for glycolysis is encoded by the transcription factor MEIS1 and, to a lesser extent, the protein CBP/p300-interacting transactivator 2 (CITED2). Both enzymes up regulate hypoxia-inducible factor 1α (HIF1α). Under hypoxic conditions, HIF1α dimerizes with HIF1ß to increase expression of several glycolytic enzymes to lead to an enhanced rate of glycolysis. HIF1α also activates pyruvate dehydrogenase kinases (PDK) 2 and 4. These enzymes inhibit pyruvate dehydrogenase (PDH). PDH converts pyruvate into acetyl-CoA, a crucial first step for metabolite entry into the TCA cycle and oxidative phosphorylation. Because this system inhibits mitochondrial metabolism and activates glycolysis, it is thought that the metabolic reprogramming by HIF1α is a main driver of LT-HSC quiescence. Metabolic reprogramming by HIF1α does not always happen through action on PDKs. HIF1α can also promote expression of the cytosolic protein CRIPTO. CRIPTO then interacts with its cell surface receptor GRP78 to activate glycolytic enzymes. Extracellular cytokines and chemokines may also contribute to HIF1α activity, but further work is required to elucidate the exact contribution of these signaling molecules. In addition to HIF1α, MEIS1 induces transcription of HIF2α. Though this enzyme is structurally similar to HIF1α, HIF2α has distinct functions. HIF2α is thought to protect HSCs from mitochondrial ROS production. An accumulation of ROS in HSCs causes stress at the endoplasmic reticulum, eventually inducing the unfolded protein response and apoptosis. HIF2α protects the cell from ROS accumulation by up regulating several genes involved in ROS quenching, including catalase, glutathione peroxidase type I, and superoxide dismutases. Activation of HIF2α is therefore necessary to maintain cellular health during quiescence.

Mitochondrial metabolism

Despite low levels of mitochondrial respiration, emerging evidence shows that LT-HSCs with the highest regenerative potential also have a high number of mitochondria. Despite this, quiescent HSC mitochondria have a low membrane potential and low rates of oxidative phosphorylation. This again highlights the dependence of LT-HSCs on glycolysis to generate energy. Despite their inactivity, possessing many mitochondria may indicate that the quiescent HSCs are prepared for proliferation once an appropriate signal is received

Cell fate decisions Recently, it has been discovered that fatty acid oxidation (FAO) is a major determinant in whether a stem cell will symmetrically or asymmetrically divide. Transport of fatty acids into the mitochondria and their subsequent metabolism must be efficient in order for cells to maintain the ability to self-renew. In HSCs, transcriptional activation of nuclear genes involved in fatty acid transport and β-oxidation through a promyelocytic leukemia protein (PML)/peroxisome proliferation-activated receptor-gamma coactivator 1α (PGC-1α)/peroxisome proliferator-activating receptor type δ (PPARδ) mediates efficiency of these processes. This pathway is also essential for HSC self-renewal because it promotes maintenance of the stem cell population. FAO promotes asymmetric HSC division to produce one progenitor and one stem cell. Inhibition of FAO has been shown to expand the population of progenitor cells, thus decreasing the stem cell population. Despite correlations between FAO and asymmetrical HSC divisions, the exact mechanism by which FAO governs stem cell fate decisions is still unclear.

Metabolism during proliferation

… excerpt ends here. Continue reading the full article.

Illustrations

Metabolic regulation of hematopoiesis: Figure 2. Summary of HIF1α regulation in hematopoietic stem cells. Stabilization of HIF1α causes a shift towards glycolysis, while degradation promotes the TCA cycle and oxidative phosphorylation.[28]
Figure 2. Summary of HIF1α regulation in hematopoietic stem cells. Stabilization of HIF1α causes a shift towards glycolysis, while degradation promotes the TCA cycle and oxidative phosphorylation.[28]

Worked examples

Example 1 — a first encounter with Metabolic regulation of hematopoiesis

Start with the simplest possible case. Write down what Metabolic regulation of hematopoiesis claims or describes in one sentence, then invent the smallest concrete situation in which that sentence is true. In science, the smallest case is usually a single object, a single equation or a single measurement. Check that every symbol or term in your sentence has a meaning in that case.

Example 2 — changing one variable

Take the situation from Example 1 and change exactly one quantity: double it, halve it, or set it to zero. Predict what should happen to Metabolic regulation of hematopoiesis before you calculate. Comparing your prediction with the result is the fastest way to find out whether you understand the idea or only the words.

Example 3 — an exam-style question

Typical questions about Metabolic regulation of hematopoiesis ask you to (a) state it precisely, (b) apply it to given data, and (c) explain a limitation. Practise writing all three answers in under five minutes; the third part is what separates a full-mark answer from an average one.

Applications of Metabolic regulation of hematopoiesis

In research
Metabolic regulation of hematopoiesis appears in science research whenever the underlying quantities have to be modelled precisely. Papers usually cite it as a starting assumption and then explore where it breaks down.
In technology and industry
Engineering practice reuses Metabolic regulation of hematopoiesis in design rules, simulations and safety margins. Knowing the idea lets you read a specification sheet and understand why the numbers look the way they do.
In the classroom
Metabolic regulation of hematopoiesis is common in secondary-school and first-year university syllabi. It links to neighbouring topics Hematopoiesis, Metabolism, so understanding it makes those chapters shorter.
In everyday life
Look for Metabolic regulation of hematopoiesis outside the textbook — in sport, cooking, traffic, electronics or the sky above you. An example you found yourself is remembered far longer than one you were given.
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How to study Metabolic regulation of hematopoiesis in 20 minutes

  1. Read the reference excerpt below once, without taking notes.
  2. Close the page and write down what Metabolic regulation of hematopoiesis means in your own words.
  3. Compare your version with the excerpt and mark what you missed.
  4. Work through the three examples above with pen and paper.
  5. Explain Metabolic regulation of hematopoiesis out loud to somebody else — or to Teacher Smith in the lgStudy chat.

Frequently asked questions

What is Metabolic regulation of hematopoiesis in simple terms?

Hematopoietic stem cells (HSCs) have high regenerative potentials and are capable of differentiating into all blood and immune system cells. Despite this impressive potential, HSCs have limited potential to produce more multipotent stem cells.

Why does Metabolic regulation of hematopoiesis matter?

Because it connects several science ideas at once: it gives you a definition you can apply, a quantity you can calculate, and a way to check whether a result is plausible.

How should I study Metabolic regulation of hematopoiesis?

Read the excerpt, restate it from memory, then work through the examples and applications listed on this page. The five-step study plan above takes about twenty minutes.

What does this page cover?

It gives you a compact reference excerpt plus original lgStudy explanations, examples, applications and study material on Metabolic regulation of hematopoiesis.

Tags

  • Hematopoiesis
  • Metabolism

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