What are the ocular and objective lenses in a compound microscope? What are the four objectives typically found on a teaching microscope like the ones we use?
How is the pointer/ocular micrometer used to estimate the dimensions of an object being viewed under the microscope?

Answers

Answer 1

The ocular lens, also known as the eyepiece, is the lens closest to your eye when looking into the microscope. It magnifies the image of the object being viewed. The objective lens is the lens closest to the specimen and it provides the initial magnification.

There are typically four objectives found on a teaching microscope. These are: 4x, 10x, 40x, and 100x. The 4x provides the lowest magnification, while the 100x provides the highest magnification.

The pointer/ocular micrometer is used to estimate the dimensions of an object being viewed under the microscope. It works by having two or more sets of cross-hairs or lines on the ocular lens, with each set being a known distance apart. By measuring the number of sets that the object spans, the approximate size of the object can be determined.

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Related Questions

3. Identify the instruments used in the lab and explain what
they’re used for. For example,
what is the purpose of a Bunsen burner and bacteriological
incinerator?

Answers

The instruments used in a lab are essential for carrying out various experiments and research. Some of the commonly used instruments in a lab include: Bunsen burner, bacteriological incinerator, pipettes, microscopes, centrifuges.

Bunsen burner: This instrument is used to heat substances and is commonly used in chemistry labs. It consists of a gas inlet, a gas valve, and a burner tube. The gas valve is used to control the flow of gas, and the burner tube is used to create a flame.Bacteriological incinerator: This instrument is used to sterilize equipment and destroy pathogens. It is commonly used in microbiology labs to prevent contamination of samples.Pipettes: These are used to measure and transfer small volumes of liquids. They are commonly used in biology and chemistry labs.Microscopes: These are used to magnify and examine small objects such as cells and microorganisms. They are commonly used in biology labs.Centrifuges: These are used to separate substances based on their densities. They are commonly used in biology and chemistry labs.

These are just a few examples of the many instruments used in a lab. Each instrument serves a specific purpose and is essential for carrying out experiments and research.

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1. Why do you need the ascarite and dryerite in the mouse chamber? 2. With a CO, absorbing substance within the chamber, what happens to the air volume within the chamber as the O2 is consumed by your mouse? 3. If no CO, absorber had been present, what would have happened to the air volume within the chamber? In this laboratory exercise we will measure the rate of respiration in a living organism (a mouse), and determine the effect of temperature on the respiration rate of the mouse. We will measure the respiration rate of mice by determining the rate at which O, is consumed by the mouse both at room temperature and at close to freezing temperatures (approximately 32°F or 0°C).

Answers

1. The azcarite and dryerite are CO₂ and moisture absorbents needed to accurately measure the oxygen.

2. As the mouse consumes oxygen (O₂), the volume of air in the chamber will decrease

3. If there is no  CO₂ absorbent, the volume remains constant.

Measure the rate of respiration

1. Ascarite and dryerite are used in the mouse chamber to absorb the CO₂ produced by the mouse during respiration. Ascarite is a substance that is used to absorb carbon dioxide, while dryerite is used to absorb moisture from the air. By removing these substances from the air, the mouse chamber is able to maintain a consistent air volume, which is necessary for accurate measurements of the respiration rate.

2. With the ascarite present in the chamber, the air volume within the chamber will decrease as the O₂ is consumed by the mouse. Because oxygen is being replaced by carbon dioxide, which is being absorbed by the CO₂ absorbing substance


3. If no CO₂ absorber had been present in the chamber, the air volume within the chamber would remain constant. This is because the CO₂ produced replaces the air volume of O₂ consumed.

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Explain how the nitrate reduction test works and describe the
underlying physiology for which it is testing.

Answers

The nitrate reduction test is a biochemical test used to determine the ability of an organism to reduce nitrate (NO₃) to nitrite (NO₂) or other nitrogenous compounds through the process of nitrate reduction.

This test is commonly used in the identification of bacteria, as different species have varying abilities to reduce nitrate.

The test works by inoculating a nitrate broth with the organism of interest and incubating for a period of time. After incubation, a reagent is added to the broth to test for the presence of nitrite. If nitrite is present, it will react with the reagent to produce a red color, indicating a positive result for nitrate reduction.

If no color change occurs, it may mean that the organism is not capable of reducing nitrate, or that it has reduced it to another nitrogenous compound. In this case, a second reagent is added to test for the presence of other nitrogenous compounds. If a color change occurs after the addition of the second reagent, it indicates a positive result for nitrate reduction to another compound.

The underlying physiology of nitrate reduction involves the use of nitrate reductase enzymes, which catalyze the reduction of nitrate to nitrite or other nitrogenous compounds. Different species of bacteria have different types and levels of nitrate reductase enzymes, which is why the nitrate reduction test can be used to differentiate between species.

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Why
and how does attenuation determine the abundance of
chlorophyll-containing primary producers at specific locations in a
lake?

Answers

Attenuation, or the decrease in intensity of light with distance, plays a major role in determining the abundance of chlorophyll-containing primary producers in a lake. As light intensity decreases with distance from the surface, so does the photosynthetic activity of organisms, meaning there are fewer primary producers and thus less chlorophyll in the deeper depths.

This is because the primary producers need light to photosynthesize, and this decreases as light is attenuated by the water. Additionally, certain primary producers have adapted to certain depths of light, which can also affect their abundance in certain areas of a lake.

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A 27 year-old female is receiving prenatal care. At the end of her last tri-semester, her OB/GYN physician orders a routine vaginal culture as recommended by the American College of Obstetricians and Gynecologists (ACOG). She is not exhibiting any signs or symptoms of infection. What bacteria was isolated?

Answers

The American College of Obstetricians and Gynecologists (ACOG) recommends that all 27 year-old pregnant women receive a routine vaginal culture.

Since the patient is not exhibiting any signs or symptoms of infection, the culture will typically be testing for bacterial vaginosis (BV).

BV is caused by an overgrowth of certain types of bacteria, including Gardnerella vaginalis, Mobiluncus, Mycoplasma hominis, and Bacteroides. These bacteria may be present in the vagina but not necessarily cause any symptoms.

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There are bones in the human body that work together to form the system

Answers

There are 206 bones in the human body that work together to form the skeletal system.

The skeletal system is the group of bones in the human body that work together to provide structure, support, and protection. The skeletal system is made up of 206 bones that are connected by joints, ligaments, and cartilage. These bones come in various shapes and sizes and are essential for movement, balance, and posture. The bones in the skeletal system also have other important functions, such as producing blood cells in the bone marrow and storing minerals such as calcium and phosphorus.

The bones work together with muscles, tendons, and ligaments to create movement, and they protect vital organs such as the brain, heart, and lungs. Some examples of bones in the skeletal system include the skull, spine, ribs, arms, legs, and pelvis. Each bone in the body has a unique shape and structure that allows it to perform its specific function. Together, the bones of the skeletal system form a complex and interconnected network that is essential for human life and well-being.

The complete question is

There are       bones in the human body that work together to form the            system.

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2. Which material refracted the light rays the most: air, water, or glass?
3. Which material refracted the light rays the least: air, water, or glass?
4. How does density affect refraction?

Answers

Answer: Your welcome!

Explanation:

1. Refraction occurs when light passes from one medium to another and its direction changes.

2. Glass refracted the light rays the most.

3. Air refracted the light rays the least.

4. The greater the density of the medium, the more the light rays are refracted.

What are the 4 steps of next-generation sequencing?

Answers

The four steps of next-generation sequencing (NGS) are library preparation, sequencing, data analysis, and interpretation.

Library preparation involves the fragmentation of the DNA or RNA sample, followed by the addition of adapters to the fragments, and amplification to create a library of molecules ready for sequencing.

Sequencing is performed using specialized platforms that generate millions of sequences in parallel, generating large amounts of data in a short amount of time.

Data analysis involves processing and filtering the raw sequencing data to generate accurate and high-quality reads, which are then aligned to a reference genome or assembled de novo.

Finally, the interpreted data is analyzed to identify genetic variations, gene expression patterns, and other biological insights.

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How is a chromosome disorder diagnosed?

Answers

A chromosome disorder is typically diagnosed through a variety of tests, such as a karyotype and a chromosome analysis. A karyotype is a analysis of a person’s chromosomes and can be done through a blood sample or amniotic fluid.

This will show any abnormalities in the number of chromosomes or in the structure of the chromosomes. A chromosome analysis looks at the size and shape of each chromosome to determine if there are any abnormalities.

This test can be done through a skin sample, amniotic fluid, or a sample of the placenta. In some cases, a genetic counselor or doctor may also order additional tests, such as a DNA or gene test, or chromosomal microarray, to help diagnose the disorder. Once a chromosome disorder is diagnosed, a treatment plan can be developed to help manage symptoms and prevent further complications.

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In what ways do you think that cancer evolution is similar to
bacterial evolution? In what ways is it different?

Answers

Cancer evolution is similar to bacterial evolution in that both are caused by a variety of genetic and environmental factors. However, cancer evolution is unique in that it is caused by a single cell becoming mutated, while bacterial evolution is caused by a collection of cells.

Cancer evolution is similar to bacterial evolution because of the following ways:

Random mutations contribute to the evolution of cancer and bacteria.Gene expression patterns change during the evolution of cancer and bacteria. Cancer and bacteria must adapt to their environment to survive and evolve.Cancer and bacteria have evolved mechanisms to evade the immune system.

Cancer evolution is different from bacterial evolution in the following ways:

Bacteria can rapidly evolve resistance to antibiotics.Cancer cells have a greater tendency to acquire genetic mutations than bacteria. Cancer cells arise from mutations in human cells, while bacteria exist as distinct organisms. Bacteria can exchange genetic material with other bacteria to accelerate their evolution.

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1. A group of students (group 1) perform an experiment to determine the concentration of coliforms in potable water. In this experiment,5 mLof water was filtered and the membrane was incubated on mFC agar plates at37∘C. After 24 hours, the plate was observed for colonies. mFC agar is a selective media that allows for the growth of coliforms. On mFC agar, fecal coliforms form blue colonies and non-fecal coliforms form white colonies. The mFC agar contains selective and differential agents that allow for growth and identification of coliforms. Rosolic acid inhibits bacterial growth in general, except for growth of coliforms. Bile salts inhibit contaminating gram positive bacteria. Aniline blue indicates the ability of fecal coliforms to ferment lactose to acid that causes a pH change in the medium. Lactose utilization (blue color) is the basis for identification of fecal coliforms. A. (1 pt) From the picture above, calculate the number (in CFU) of total coliforms and the number of fecal coliforms in the5 mL sample of water. Be sure to include units in your answer Non-fecal coliform are
1CFU/mL
and fecal coliform are
4CFU
B. (1 pt) Now, calculate the concentration (in CFU/100 mL) of total coliforms in the water sample. Our standard for reporting is CFU/100mL. Keep in mind that you have only filtered 5
mL
of water, but you have to calculate the number of organisms in
100 mL
, There are two ways to do this: (1) use the formula in the protocol, or (2) consider that
100 mL
is
10X
greater than
10mh
Be sure to include units in your answer. C. (0.5 pt) Would you drink this water? Why or Why not? D. (0.5 pt) Why do non-fecal coliforms form white colonies while fecal coliform formed blue colonies in the above picture? E.(0.5pt) If you were to gram stain one of the blue colonies on the plate, what would you predict for the results of that gram stain? Include shape, color, and what the gram stain color indicates.

Answers

A. Based on the information provided, the number of total coliforms in the 5 mL sample of water is 5 x 1 CFU/mL = 5 CFU,

the number of fecal coliforms is 1 x 4 CFU = 4 CFU.

B. the concentration of total coliforms in the water sample is 288 CFU/100 mL.

C. Based on the high concentration of coliforms in the water sample, it is not safe to drink.

D. Non-fecal coliforms form white colonies because they do not ferment lactose to produce acid, and therefore do not cause a pH change in the medium that would result in a blue color.

E. If we were to gram stain one of the blue colonies on the plate, we would predict that it is a gram-negative bacterium.

Coliform Concentration Calculation

A. Based on the information provided, the number of total coliforms in the 5 mL sample of water is 5 x 1 CFU/mL = 5 CFU,

the number of fecal coliforms is 1 x 4 CFU = 4 CFU.

B. To calculate the concentration of total coliforms in CFU/100 mL, we can use the following formula:

Concentration (CFU/100 mL) = (Number of colonies / Volume plated) x (Dilution factor / Volume filtered) x 100

In this case, the dilution factor is 20 (assuming a 1:20 dilution was used), and the volume filtered is 5 mL. To calculate the volume plated, we need to know the diameter of the membrane filter used. Let's assume it was 47 mm, which corresponds to a surface area of approximately 17.36 cm^2. Using a conversion factor of 1 cm^2 = 0.1 mL, we can estimate the volume plated as:

Volume plated = Surface area x Depth of agar = 17.36 cm^2 x 0.2 cm = 3.472 mL

Plugging in the values, we get:

Concentration (CFU/100 mL) = (5 / 3.472) x (20 / 5) x 100 = 288 CFU/100 mL

Therefore, the concentration of total coliforms in the water sample is 288 CFU/100 mL.

C. Based on the high concentration of coliforms in the water sample, it is not safe to drink. Coliforms are indicators of fecal contamination and their presence in drinking water can indicate the presence of harmful pathogens.

D. Non-fecal coliforms form white colonies because they do not ferment lactose to produce acid, and therefore do not cause a pH change in the medium that would result in a blue color. Fecal coliforms, on the other hand, can ferment lactose and produce acid, which results in the blue color of their colonies.

E. If we were to gram stain one of the blue colonies on the plate, we would predict that it is a gram-negative bacterium. Gram-negative bacteria typically appear pink or red after staining, and this color indicates that the bacteria have a thin peptidoglycan layer in their cell walls and an outer membrane containing lipopolysaccharides. The shape of the bacteria would depend on the species, but coliforms are generally rod-shaped (bacilli).

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plssssssssss helppppp I WILL GIVE POINTSSS

Answers

The correct order of the waves by amplitude, beginning with the wave with the largest amplitude is W, Y, X, Z

What is the amplitude of a wave?

The amplitude of a wave is the maximum displacement of the medium (such as the displacement of the surface of a body of water or the displacement of air molecules in a sound wave) from its rest position as the wave passes through it.

In simpler terms, the amplitude of a wave represents the magnitude or strength of the wave as it oscillates from its equilibrium point. For example, in a sound wave, the amplitude corresponds to the loudness or intensity of the sound.

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What is the molecular mechanism of vaccine?
Group of answer choices
A. Stimulate an immune response
B. Inhibit translation of a defective protein
C. Alter exon splicing
D. Inhibit cytokine signaling

Answers

The molecular mechanism of a vaccine is to stimulate an immune response. Therefore, alternative A is correct.

A vaccine is a biological substance that simulates the creation of immunity to a disease. When vaccinated, the immune system recognizes the vaccine as a foreign invader and produces antibodies to fight it off.

Antibodies are produced by B-lymphocytes, a type of white blood cell that binds to the foreign substance or antigen and neutralizes it. The cellular response is stimulated by T-lymphocytes, which recognize and destroy cells infected with the antigen.

In conclusion, alternative A. Stimulate an immune response is correct.

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the minimum size of an actively growing cell is 1.2x10^(-5) inches. what is the minimum space that 6 active cells will need to grow?

Answers

In order to answer this question, we must first understand the minimum size of an actively growing cell. The minimum size of an actively growing cell is 1.2x10^(-5) inches.

This means that 6 active cells would need a minimum of 7.2x10^(-5) inches of space to grow. This is because 6 cells require a minimum of 6 times the minimum size of one cell in order to grow.

So, each active cell must be given the 1.2x10^(-5) inches of space in order to grow, and the total space needed for 6 cells to grow will be 6 times this amount. Therefore, the minimum space that 6 active cells will need to grow is 7.2x10^(-5) inches.

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Ventral respiratory group neurons in the medulla control and coordinate respiratory motor outputs to drive the rhythm of breathing. True or False

Answers

True. The Ventral Respiratory Group (VRG) neurons in the medulla do control and coordinate respiratory motor outputs to drive the rhythm of breathing.

The VRG is responsible for generating the basic rhythm of respiration and is composed of two main types of neurons: inspiratory and expiratory. These neurons send signals to the respiratory muscles, causing them to contract and relax, leading to the inhalation and exhalation of air. The VRG also receives input from other areas of the brainstem, such as the Dorsal Respiratory Group (DRG), which helps to fine-tune the respiratory rhythm. Overall, the VRG plays a crucial role in the control of breathing.

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What is the route of blood through the crocodilian, bird, & mammal heart and circulation?

Answers

The route of blood through the crocodilian, bird, and mammal heart and circulation involves the blood being pumped from the heart to the body through arteries, returning to the heart through veins, and then being pumped to the lungs (in the case of mammals and birds) or to the lungs and stomach (in the case of crocodilians) before returning to the heart again.

In mammals, the heart consists of four chambers: the right and left atria, and the right and left ventricles. Blood flows into the right atrium through the superior and inferior vena cava, then into the right ventricle, which pumps the blood to the lungs through the pulmonary artery. Oxygenated blood returns to the left atrium through the pulmonary vein and then into the left ventricle, which pumps it out to the rest of the body through the aorta.

In birds, the heart is also four-chambered, but the right ventricle is larger and more muscular than in mammals to help pump blood to the lungs more efficiently.

In crocodilians, the heart has four chambers as well, but there is a valve between the right atrium and ventricle that can divert blood to the stomach instead of the lungs, allowing them to remain submerged underwater for extended periods of time.

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can
someone help me make a dichotomous key with these organisms
Staphylococcus epidermidis, diphtheroids streptococci,
Staphylococcus aureus, Pseudomonas aeruginosa, Candida, Torulopsis,
Pityrosporum?

Answers

Yes, certainly! To make a dichotomous key with these organisms, you should begin by identifying the characteristics that can be used to differentiate between them.


A dichotomous key is a tool used to classify and identify organisms by using a series of yes or no questions about their physical characteristics. Here is an example of how you can create a dichotomous key for the organisms you listed:

1. Is the organism a bacterium?
 a. Yes - Go to question 2
 b. No - Go to question 3
2. Does the bacterium form clusters?
 a. Yes - Staphylococcus aureus or Staphylococcus epidermidis
 b. No - Pseudomonas aeruginosa or diphtheroids streptococci
3. Is the organism a yeast?
 a. Yes - Candida or Torulopsis
 b. No - Pityrosporum

From here, you can continue to ask more specific questions about the physical characteristics of each organism to narrow down the identification. Remember to always be concise and accurate in your questions and answers.

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Based on your review of the Bradbury et al. (2005) paper,
explain why editing a non-aromatic rice to make it aromatic would
be easier than making an aromatic rice non-aromatic.

Answers

As stated in the article by Bradbury et al. (2005), editing a non-aromatic rice to make it aromatic is easier because only the inactivation of a single gene would be required.

The Bradbury et al. (2005) paper explains that the production of the aromatic compound 2-acetyl-1-pyrroline (2AP) in rice is controlled by a single gene called the "badh2" gene.

In aromatic rice varieties, this gene is either non-functional or has a deletion, leading to the production of 2AP and the characteristic aroma. In non-aromatic rice varieties, the "badh2" gene is functional and prevents the production of 2AP.

Therefore, editing a non-aromatic rice to make it aromatic would be easier because it would only require the inactivation or deletion of a single gene. On the other hand, making an aromatic rice non-aromatic would require the insertion of a functional "badh2" gene, which is a more complex process.

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500 words
What is free energy and how is it significant with respect to
living cells?

Answers

Free energy, also known as Gibbs free energy, is the energy available to do work in a system. It is represented by the symbol ΔG and is defined as the difference between the enthalpy (total energy) of a system and the product of its temperature and entropy (disorder). In other words, ΔG = ΔH - TΔS.

Free energy is significant with respect to living cells because it determines the direction and spontaneity of biochemical reactions. If ΔG is negative, the reaction will occur spontaneously and release energy, whereas if ΔG is positive, the reaction will not occur spontaneously and will require energy input. Cells use free energy to drive essential processes such as protein synthesis, DNA replication, and ATP production. Without free energy, cells would not be able to perform the functions necessary for life.
It is important to note that free energy is not the same as total energy. While total energy is conserved in a closed system, free energy can change depending on the conditions of the system. This allows cells to use free energy to do work and maintain their structure and function.

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In the Socio-ecological Framework for childhood obesity,
parent's workplace stressors are an example of a(n) _______________
level determinant of health.
a. Exosystem
b. Mesosystem
c. Individual
d. Mi

Answers

In the Socio-ecological Framework, parents' workplace stressors are an example of an a) exosystem-level determinant of health.

The exosystem refers to external systems that indirectly affect an individual's health, such as the workplace, community, and media. Parents' workplace stressors can affect their ability to provide healthy food options and engage in physical activity with their children, which can contribute to childhood obesity.

Additionally, parents may be more likely to engage in unhealthy coping mechanisms such as emotional eating or neglecting their own health behaviors, which can further impact their children's health outcomes.

By recognizing and addressing these exosystem-level determinants, interventions can be designed to support healthy behaviors for both parents and children.

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Explain why a change in pH did not have an effect on the production of oxygen. What did a change in pH effect? The pH was being changed specifically in the stroma, why does this mean that the change in pH would have that effect but not affect oxygen?

Answers

A change in pH did not have an effect on the production of oxygen because the production of oxygen occurs in the thylakoid membranes, not in the stroma.

The stroma is the fluid-filled space surrounding the thylakoid membranes, and it is where the Calvin cycle takes place. The Calvin cycle is responsible for the production of glucose, not oxygen. Therefore, a change in pH in the stroma would have an effect on the production of glucose, but not on the production of oxygen. This is because the enzymes involved in the Calvin cycle are sensitive to changes in pH and may not function properly if the pH is too high or too low. However, the enzymes involved in the production of oxygen in the thylakoid membranes are not affected by changes in pH in the stroma.

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3. The Cheringoma Plateau is the location of one of the biodiversity surveys overseen by Dr.
Naskrecki.
a. Why do they need to do similar surveys at other locations?

Answers

Cheri ngoma Plateau explanation.

While the Cheringoma Plateau survey overseen by Dr. Naskrecki provides valuable information about the biodiversity of that particular location, it is important to conduct similar surveys at other locations for several reasons:

Species distribution: Different species may be present in different geographic locations due to various factors such as climate, geography, and human impact. Conducting surveys in multiple locations helps us understand the distribution of species and their adaptations to different environments.Conservation efforts: Biodiversity surveys provide important data for conservation efforts. By conducting surveys at multiple locations, we can identify areas that are particularly rich in biodiversity and prioritize conservation efforts accordingly.Scientific research: Biodiversity surveys can also provide important insights into ecological and evolutionary processes. Conducting surveys in multiple locations can help us understand how these processes vary across different ecosystems.Monitoring changes over time: Biodiversity surveys conducted over time can provide information on how ecosystems are changing, and how species are responding to environmental pressures such as climate change and habitat loss.

Therefore,  conducting surveys at multiple locations, we can compare how different ecosystems are responding to these pressures and identify potential conservation strategies.

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A. Enumerate the Following: 1. Four segments of oviducts a. b. C. d. 2. Histologic layers of corpus uteri (uterus) e. f. g. B. Write the different types of cells and tissues present in each organs/ st

Answers

1.Four segments of oviducts:
a. Infundibulum
b. Ampulla
c. Isthmus
d. Intramural
2. Corpus Uteri (Uterus):
Histologic Layers:
- Endometrium
- Myometrium
- Perimetrium
2. Cell Types and Tissues Present: Epithelial cells, stromal cells, glands, smooth muscle cells, and fibrous connective tissue.

A. 1. The four segments of oviducts are:
a. Infundibulum: This is the funnel-shaped opening of the oviduct, which is close to the ovary and captures the egg after ovulation.
b. Ampulla: This is the widest and longest part of the oviduct, where fertilization usually takes place.
c. Isthmus: This is the narrowest part of the oviduct, which connects the ampulla to the uterus.
d. Intramural: This is the part of the oviduct that is located within the wall of the uterus.
2. The histologic layers of corpus uteri (uterus) are:
e. Endometrium: This is the innermost layer of the uterus, which is composed of epithelial cells and glands.
f. Myometrium: This is the middle layer of the uterus, which is composed of smooth muscle cells.
g. Perimetrium: This is the outermost layer of the uterus, which is composed of connective tissue.
B. The different types of cells and tissues present in each organ are:
- Oviducts: The oviducts are lined with ciliated epithelial cells, which help to move the egg towards the uterus. The oviducts also contain smooth muscle cells, which help to contract and move the egg.
- Uterus: The uterus is composed of three main types of cells and tissues, including the endometrium, myometrium, and perimetrium. The endometrium is composed of epithelial cells and glands, the myometrium is composed of smooth muscle cells, and the perimetrium is composed of connective tissue.

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You are now ready to complete the assessment for this Activity. Perform a lab using household materials to investigate the properties of water. As you prepare for, perform and report about your investigation, look for opportunities to practice good Organization Skills. Look for ways that you can present data and observations clearly and comprehensively. Finally, practice using vocabulary related to biochemistry to describe biological molecules.
Your write-up will
be typed, using spell check, table-making functions and headings.
include thorough observations
Include pictures of each of your results
summarize your results using concise language in a neat table. For quantitative observations, put units only in the column headings -- Ex. Volume (mL)
if you used internet or paper sources, reference them at the end of your report in a section called "References" in APA format in alphabetic order.
Offer detailed explanations using relevant specific terminology, examples and references
the corresponding relevance of the results to living things

Answers

To investigate the properties of water using household materials, you'll need to gather some supplies. Begin by measuring out 1 cup of water into the bowl. Observe its appearance and record any physical characteristics.

Then, add a few drops of food coloring and stir it in. Record the new color and any changes in the appearance of the water. Now, add 3 pieces of ice to the bowl and observe how the temperature of the water changes. Record any differences in the properties of water.

Next, take a spoon and stir the water. Record the motion and texture of the water. Finally, take a spoonful of the water and observe it under a microscope. Record any changes in the appearance and texture.


This activity has demonstrated the properties of water. Water has a liquid form at room temperature, but can be frozen into a solid form when cooled. Its state can be changed with food coloring, and it has a unique texture and motion when stirred.

Additionally, its small particles can be observed under a microscope. By studying the properties of water, you have been able to practice good organization skills, present data and observations clearly and comprehensively, and use vocabulary related to biochemistry.

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What substance is able to pass through the outer membrene of the mitochondria

Answers

Answer:

That would be oxygen

Explanation:

Hope this helps

signal transduction when ligand binds a receptor, the receptor = conformational change: launches a series of biochemical reactions within the cell signal transduction cascade: receptor binds to ligand, the message is amplified intracellularly

Answers

Signal transduction is the process in which a signal, such as a ligand, is converted into a response within a cell. When a ligand binds to a receptor, it can cause a conformational change in the receptor that launches a series of biochemical reactions within the cell, known as the signal transduction cascade. This cascade involves the receptor binding to the ligand, and then the message is amplified intracellularly.


Signal transduction is the process by which a cell converts an extracellular signal into an intracellular response. This process typically begins when a ligand, such as a hormone or neurotransmitter, binds to a receptor on the cell surface. This binding causes a conformational change in the receptor, which then activates a series of biochemical reactions within the cell. These reactions, known as a signal transduction cascade, amplify the original signal and ultimately lead to a specific cellular response. The specific response depends on the type of receptor and the type of ligand, and can include changes in gene expression, protein activity, and cellular metabolism.

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Make a table with the difference and similarities between fasciola
hepatica and schistosoma life cycle.
please in a table!!!!

Answers

The table with the difference and similarities between fasciola hepatica and schistosoma life cycle the differences of them in the location of the adult worms in the host and the method of infection for the human host and the similarity is the similar life cycles.


The following is the the difference and similarities between fasciola hepatica and schistosoma life cycle:

Fasciola hepatica  : Adults live in the bile ducts of the liver
Schistosoma  : Adults live in the blood vessels around the bladder or intestine
Fasciola hepatica  :  Eggs are released into the bile duct and passed out of the host in the feces
Schistosoma : Eggs are released into the bladder or intestine and passed out of the host in the urine or feces
 
 
Fasciola hepatica : Eggs hatch in water and release a free-swimming miracidium
Schistosoma : Eggs hatch in water and release a free-swimming miracidium
Fasciola hepatica : Miracidium infects a snail host
Schistosoma : Miracidium infects a snail host
 
 
Fasciola hepatica : Develops into a cercaria inside the snail
Schistosoma : Develops into a cercaria inside the snail
Fasciola hepatica : Cercaria leaves the snail and encysts on aquatic vegetation
Schistosoma : Cercaria leaves the snail and directly infects a human host
 
Fasciola hepatica : Human host becomes infected by consuming the encysted cercaria on the vegetation
Schistosoma :  Human host becomes infected by the cercaria penetrating the skin
 

Both Fasciola hepatica and Schistosoma have similar life cycles, with both releasing eggs that hatch into miracidium and infect a snail host. However, there are some key differences, such as the location of the adult worms in the host and the method of infection for the human host. Fasciola hepatica adults live in the bile ducts of the liver and infect humans through the consumption of encysted cercaria on aquatic vegetation, while Schistosoma adults live in the blood vessels around the bladder or intestine and infect humans through the direct penetration of the skin by the cercaria.

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If a mutation changes the RNA three-letter code from UAU to CAU in one location, the result will be:
shortening of the protein because of the STOP signal
no change in the amino acid
changing several amino acids in the protein
a change to a different amino acid

Answers

A mutation that changes the RNA three-letter code from UAU to CAU in one location will result in a change to a different amino acid.

The three-letter code, also known as a codon, specifies a particular amino acid during protein synthesis. Each codon corresponds to a specific amino acid, so changing the codon will result in a different amino acid being incorporated into the protein. This can potentially alter the structure and function of the protein. However, it will not result in a shortening of the protein, no change in the amino acid, or changing several amino acids in the protein.

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The most common form of cystic fibrosis is caused by a single
amino acid deletion at position 508 of the CFTR protein. This
mutation alters which level(s) of the protein structure? Select one
or more.

Answers

The mutation alters by the single amino acid deletion at position 508 of the CFTR protein affects the tertiary and quaternary levels of protein structure.

What is cystic fibrosis?

Cystic fibrosis is a genetic disease that affects several body organs like the pancreas, lungs, and other areas that produce mucus, sweat, and digestive juices. When secretions from these organs become thick and sticky, they block airways and cause infections in the lungs, which can make breathing difficult.

In people with cystic fibrosis, a single amino acid deletion at position 508 of the CFTR (cystic fibrosis transmembrane conductance regulator) protein is the most common form of the disease. This mutation alters the tertiary and quaternary levels of the protein structure.

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good morning! i have a question!
how is a sedimentary rock made?

Answers

Sedimentary rocks are made by the weathering of other broken down rocks or plants. Over time the materials create layers off of the broken down material. Then after that, pressure is put on the rock and plant layers for a long period of time. After a while of the pressure being put on the rock and plant layers a new rock forms out of the materials forming Sedimentary Rock.

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