Explain why non-woody plants, like most houseplants, wilt if
their cells are placed in an isotonic solution.

Answers

Answer 1

Non-woody plants, like most houseplants, wilt if their cells are placed in an isotonic solution because there is no net movement of water into or out of the cells.

An isotonic solution is one in which the concentration of solutes is the same inside and outside of the cell. This means that the water potential inside and outside of the cell is equal, so there is no net movement of water. Without the movement of water into the cells, the cells are not able to maintain their turgor pressure, which is what keeps the plant upright and prevents wilting. As a result, the non-woody plant will begin to wilt.

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Related Questions

Who are more closely related,
A. afarensis and Paranthropus aethiopicus
OR A. afarensis and P. robustus?

Answers

Answer:

Your answer is: A. afarensis and P. robustus

Explanation:

What is an R plasmid and what types of genes are found on it (
pilus-synthesis genes, drug-resistant genes)?

Answers

An R plasmid (or resistance plasmid) is a type of plasmid that carries genes that provide resistance to antibiotics or other toxic compounds. The types of genes that are found on it are pilus-synthesis genes and drug-resistant genes.

R plasmids can be transferred between bacteria through the process of conjugation, which is mediated by pilus-synthesis genes. In addition to pilus-synthesis genes, R plasmids often carry drug-resistant genes that can provide resistance to a wide range of antibiotics, including penicillin, tetracycline, and streptomycin. This allows bacteria to survive in environments where antibiotics are present and can contribute to the spread of antibiotic resistance among bacterial populations.

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- Tissue cell donar -> Cells from animal to be cloned are main- ained in he hey do not grow or dvide -> Nucleus is removed -> Nucleus fusses with empty egg after electric current applied -> The reconstructed embryo grows for 7 days -> Embryo's eimplanted into surrogate mother -> Cloned animal is born with exact DNA as the tissue cell donor. - Donor Supplies unfertilised eggs -> Egg cell -> Nucleus is removed -> Nucleus fusses with empty egg after electric current applied -> The reconstructed embryo grows for 7 days -> Embryo's eimplanted into surrogate mother -> Cloned animal is born with exact DNA as the tissue cell donor.
Dolly was the first successfully cloned mammal. Which of the 3 adult female sheep was she considered to be a clone of? A. A combination of the tissue donor and egg donor females B. The tissue cell donor. C. The egg donor D. The surrogate mother

Answers

- Tissue cell donar -> Cells from animal to be cloned are main- ained in he hey do not grow or dvide -> Nucleus is removed -> Nucleus fusses with empty egg after electric current applied -> The reconstructed embryo grows for 7 days -> Embryo's eimplanted into surrogate mother -> Cloned animal is born with exact DNA as the tissue cell donor. - Donor Supplies unfertilised eggs -> Egg cell -> Nucleus is removed -> Nucleus fusses with empty egg after electric current applied -> The reconstructed embryo grows for 7 days -> Embryo's eimplanted into surrogate mother -> Cloned animal is born with exact DNA as the tissue cell donor.

Dolly was the first successfully cloned mammal. The 3 adult female sheep was she considered to be a clone of B. The tissue cell donor.

Dolly was the first successfully cloned mammal. She was considered to be a clone of the tissue cell donor, as cells from the tissue cell donor were taken and fused with an empty egg after an electric current was applied. The reconstructed embryo was grown for 7 days before being implanted into a surrogate mother, and eventually a cloned animal was born with the exact DNA of the tissue cell donor.

Since the genetic material in the nucleus of the tissue cell donor was used to create Dolly, she is considered to be a clone of the tissue cell donor. Therefore, the correct answer is B. The tissue cell donor.

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.

PLEASE HURRY!
Which best explains why trees are considered a renewable resource?

They are useful to humans.
They can be replanted.
They provide a source of food.
They are used to produce heat.

Answers

Answer:

They can be replanted.

Explanation:

Something that can be renewed is something that can be used over and over again without ever running out

Answer:

b

Explanation:

Why are the genomes
of eukaryotes larger than the genomes of prokaryotes?
Group of answer choices
Eukaryotes are more complex
Prokaryotes are unicellular
Genomes are contained within a nucleu

Answers

Answer is because Eukaryotes are more complex

Explanation

Eukaryote are complex and have many repeat sequences, and Pseudogenes and introns are both abundant in eukaryotic genomes.

T/F: Individuals with
1X
and
1Y
chromosome can be anatomically female. True False Question 35 T/F: All but
1Y
chromosome is inactivated in males having more than
1Y
chromosome. True False T/F: In some species, one or more autosomal genes determine the sex. True False Environmental temperature alone determines the sex of some species. True False

Answers

1. The statement about individuals with 1X and 1Y chromosomes can be anatomically female is false because the presence of the Y chromosome determines the male sex of an individual.

2. The statement about all but 1Y chromosomes are inactivated in males having more than 1Y chromosome is true.

3. The statement about in some species, one or more autosomal genes determine the sex is true.

4. The statement about environmental temperature alone determines the sex of some species is true.

Thus, the correct answers are

1. False

2. True

3. True

4. True

In males with more than one Y chromosome, all but one Y chromosome is inactivated, which is called X-inactivation, a process by which all but one X chromosome is inactivated in females.

In some species, one or more autosomal genes determine the sex. The fruit fly, for example, has a gene called the sex-lethal gene that, when mutated, causes XX individuals to develop as males and XY individuals to develop as females.4.

Environmental temperature alone determines the sex of some species. For example, in reptiles, the temperature of the egg incubation determines whether the offspring will be male or female.

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Need assistance with these two questions!
1) What is the input and output of one cycle of the krebs cycle?
2) What is the generation of macromolecules from smaller molecules called?
3) What is the input and output of one cycle Of glycolysis? Thank you!

Answers

1. Input: Acetyl-CoA, NAD+, FAD, ADP, Pi; Output: 3 NADH, 1 FADH2, 1 ATP, 2 CO2.

2. The generation of macromolecules from smaller molecules is called anabolism.

3. Input: Glucose, 2 ATP, 2 NAD+; Output: 2 Pyruvate, 4 ATP, 2 NADH.

1. The Krebs cycle, also known as the citric acid cycle, is a series of chemical reactions that occur in the mitochondria of cells. The cycle begins with the input of Acetyl-CoA, which combines with oxaloacetate to form citrate. Through a series of reactions, NAD+ and FAD are reduced to NADH and FADH2, respectively, while ADP and Pi are converted to ATP. The cycle ends with the production of 2 CO2 molecules.

2. Anabolism is the set of metabolic pathways that construct molecules from smaller units. It involves the synthesis of complex molecules from simpler ones and typically requires energy input. Examples of anabolic processes include the formation of proteins from amino acids and the synthesis of DNA and RNA from nucleotides.

3. Glycolysis is the metabolic pathway that converts glucose into pyruvate. The pathway occurs in the cytoplasm of cells and involves the breakdown of glucose into two molecules of pyruvate. In the process, two ATP molecules are consumed, while four ATP molecules are produced, resulting in a net gain of two ATP molecules. Two molecules of NAD+ are also reduced to NADH.

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Between 1960 and 2010, the world popula- tion increased by how many billions of people?​

Answers

Answer:

2.5 billion to 6.9 billion, or by 174%

Explanation:

1. Most toolkit proteins are ___________ ______ that regulates
the expression of ligand-mediated signal-transduction pathways.
2. What is the process for depositing Bicoid protein? Where is
Bicoid mos

Answers

(1) "Most toolkit proteins are transcription factors that regulate the expression of ligand-mediated signal-transduction pathways".


(2) The process for depositing Bicoid protein is called anterior localization. Bicoid mRNA is deposited at the anterior pole of the developing Drosophila embryo by the mother during oogenesis.

The Explanation to Each Answer

The statement refers to the fact that many important cellular processes, such as development and response to environmental stimuli, rely on signaling pathways that are regulated by specific proteins.

These proteins, known as transcription factors, bind to specific regions of DNA and control the expression of genes involved in these signaling pathways.

These genes can be activated or repressed depending on the signals received by the cell. Therefore, transcription factors play a crucial role in the proper functioning of cells and the maintenance of physiological homeostasis.

The process of depositing Bicoid protein, called anterior localization, is a crucial step in the development of the fruit fly, Drosophila melanogaster. Bicoid mRNA, which codes for the Bicoid protein, is synthesized by the mother during oogenesis and deposited at the anterior pole of the developing embryo.

Once translated, the Bicoid protein acts as a transcription factor that regulates the expression of genes involved in anterior-posterior axis formation. This ensures that the head and thorax of the fly develop in the correct position relative to the abdomen.

Thus, the process of anterior localization and the subsequent regulation of gene expression by Bicoid protein are essential for proper embryonic development in Drosophila.

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2. What is the depth measurement for the hemacytometer? 3. How many squares do you need to count to have a volume of 1 mm3?
4. You filled a hemacytometer with an undiluted pleural fluid and when you began you count you found that there were 80-100 WBC area. Is this dilution ok nor should you perform a dilution and refill yhe hemacytometer? If so, what dilution?

Answers

2. The depth measurement is 0.1 mm.3)10  squares you need to count to have a volume of 1 mm3. 4). The dilution for this sample is not ok, as the ideal range for WBC count on a hemacytometer is 30-50 WBC per area.

2. The depth measurement for the hemacytometer is 0.1 mm.
3. To have a volume of 1 mm3, you need to count 10 squares. This is because each square on the hemacytometer has a volume of 0.1 mm3, so 10 squares x 0.1 mm3 = 1 mm3.
4. The dilution for this sample is not ok, as the ideal range for WBC count on a hemacytometer is 30-50 WBC per area. Therefore, you should perform a dilution and refill the hemacytometer. A 1:10 dilution (1 part sample to 9 parts diluent) would be appropriate to bring the WBC count into the ideal range.

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You are testing yeast formation of glucose. You add 0.5 mL of 16% yeast to a solution of 0.2 M sodium phosphate buffer. 60% glucose, and water. If the total volume of the reaction mixture after adding yeast is 10 mL, what is the final concentration of yeast, in percent?

Answers

The final concentration of yeast in the reaction mixture is 0.8%.

Calculate final concentration

To find the final concentration of yeast in the reaction mixture, we can use the equation C1V1 = C2V2, where C1 is the initial concentration of yeast, V1 is the initial volume of yeast, C2 is the final concentration of yeast, and V2 is the final volume of the reaction mixture.

C1 = 16% V1 = 0.5 mL C2 = unknown V2 = 10 mL

Plugging in the known values into the equation, we get:

(16%)(0.5 mL) = (C2)(10 mL)

Solving for C2, we get:

C2 = (16%)(0.5 mL) / (10 mL) = 0.8%

Therefore, the final concentration of yeast in the reaction mixture is 0.8%.

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Describe transcriptional termination in eukaryotes? Is itthe same as in bacteria?

Answers

Transcriptional termination in eukaryotes is different from that in bacteria.

In eukaryotes, transcriptional termination occurs differently from bacteria. Instead of a specific termination sequence as in bacteria, eukaryotic genes have a more complex termination mechanism involving the cleavage and polyadenylation of the pre-mRNA transcript. Once the RNA polymerase II reaches the end of the gene, a signal is triggered to cleave the pre-mRNA transcript downstream of the polyadenylation signal site. The poly(A) tail is then added to the 3' end of the cleaved RNA, which signals the end of transcription and promotes stability of the mRNA. Additionally, eukaryotic transcriptional termination is influenced by chromatin structure and other regulatory factors, making it a more complex process than in bacteria.

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Why did state health departments report a dramatic increase in new tuberculosis cases in the mid 1980’s,particularly in densely populated urban areas?what can be done in dental offices to prevent a resurgence of the disease?

Answers

In the mid 1980’s a dramatic increase in new tuberculosis cases, particularly in densely populated urban areas were largely due to a decline in healthcare infrastructure and the emergence of drug-resistant strains of the bacteria that causes tuberculosis and the spread of HIV/AIDS. Dental offices should implement infection control measures and patient education to prevent the resurgence of diseases such as TB.


The dramatic increase in new tuberculosis cases in the mid-1980's, particularly in densely populated urban areas, was due to the spread of HIV/AIDS. The weakened immune systems of individuals with HIV/AIDS made them more susceptible to developing active tuberculosis infections. In addition, the overcrowding and poor living conditions in urban areas facilitated the spread of the disease.

To prevent a resurgence of tuberculosis in dental offices, several measures can be taken.

Dental offices should implement infection control measures, such as wearing masks and gloves, and properly sterilizing instruments. Dental offices should screen patients for tuberculosis before providing treatment. This can be done through a questionnaire or by checking for symptoms, such as coughing and weight loss. Dental offices should educate patients about the importance of completing tuberculosis treatment if they are diagnosed with the disease. Dental offices should work closely with local health departments to report any suspected cases of tuberculosis and to ensure that patients receive proper treatment.

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Use the image. How many cells are in interphase???

Answers

Answer:

Mitosis consists of 4 phases such as prophase, metaphase, anaphase, and telophase and the phase between 2 mitoses is called as interphase

now as per the questions are given details, on the addition of the average duration of all phases of mitosis

2.4+0.72+0.24+0.84+0.6 = 4.8 hr

Thus, the correct answer is option C.

Biological Hazards:
I need a Historical information and statistics (brief summary) about:
1- Lactobacillus
2- Herpes virus
3- SARS virus
4- Ebola virus

Answers

1- Lactobacillus is a type of bacteria that has been used for centuries in the production of fermented foods like yogurt and sauerkraut. It is generally considered safe for human consumption and even beneficial for digestive health.

2- Herpes virus has been known since ancient times, with symptoms described in ancient Greek and Roman literature. It is estimated that up to 90% of adults carry the virus, with outbreaks typically occurring on the lips (HSV-1) or genital area (HSV-2).

3- SARS virus (Severe Acute Respiratory Syndrome) emerged in China in 2002 and quickly spread to other countries, causing a global outbreak that resulted in over 8,000 cases and 774 deaths. The virus was eventually contained through public health measures, including quarantine and travel restrictions.

4- Ebola virus first emerged in 1976 in what is now the Democratic Republic of Congo. Since then, there have been multiple outbreaks in Africa, with the most deadly occurring in West Africa between 2014-2016, resulting in over 28,000 cases and 11,000 deaths.

Ebola is highly contagious and can cause severe hemorrhagic fever with a high mortality rate.

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3. B cells develop to mature, naïve B cells in the bone marrow. This question focuses on that development. A. Based on what you've learned about B cell development, describe any two specific B-cell defects that would result in no mature, naïve B cells being released from the bone marrow. Clearly and completely explain (1) how each specific defect would prevent all B cell development and (2) which of stages in B cell development (lymphoid progenitor, pro B cell, pre B cell, immature B cell) would be the last developmental stage found B. For each statement below, highlight ALL the B cell stages that can be described by each statement. Questions may have no, one, or more than one correct answer! (1) Immunoglobulin light chain DNA is in its final rearranged state (no longer germline) Pro-B cell Pre-B cell Immature B cell Mature, naïve B cell (2) RAG1/2 is active Pro-B cell Pre-B cell Immature B cell Mature, naïve B cell (3) Somatic hypermutation occurs Pro-B cell Pre-B cell Immature B cell Mature, naïve B cell (4) IgM is expressed on the cell surface Pro-B cell Pre-B cell Immature B cell Mature, naïve B cell

Answers

Two specific B-cell defects that would result in no mature, naïve B cells being released from the bone marrow are:

A defect in the RAG1/2 genes, which are responsible for rearranging the immunoglobulin heavy and light chain genes during B cell development. Without functional RAG1/2, the B cells would not be able to rearrange their immunoglobulin genes and would therefore not be able to produce functional B cell receptors. This would prevent B cell development from proceeding past the pro-B cell stage.

A defect in the Btk gene, which is responsible for signaling downstream of the pre-B cell receptor. Without functional Btk, the pre-B cells would not receive the necessary signals to continue their development and would therefore not be able to proceed to the immature B cell stage.

The Answer for Question B

(1) Immunoglobulin light chain DNA is in its final rearranged state (no longer germline): Pre-B cell, Immature B cell, Mature, naïve B cell.

(2) RAG1/2 is active: Pro-B cell, Pre-B cell.

(3) Somatic hypermutation occurs: Mature, naïve B cell.

(4) IgM is expressed on the cell surface: Immature B cell, Mature, naïve B cell.

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Would you choose a dry-heat oven, an autoclave, or incineration to heat sterilize the following items? State why.
a. Soiled dressings from a surgical wound:
b. Surgical instruments:
c. Clean laboratory glassware:
d. Clean reusable syringes:

Answers

a. Soiled dressings from a surgical wound: Autoclave, as it is the most effective and safest way to heat sterilize these materials. Autoclaves reach temperatures that are high enough to kill all types of microorganisms, and have the additional benefit of applying pressure to the material being sterilized.

b. Surgical instruments: Autoclave, as it is the most effective way to heat sterilize these materials. Autoclaves reach temperatures that are high enough to kill all types of microorganisms, and have the additional benefit of applying pressure to the material being sterilized.

c. Clean laboratory glassware: Dry-heat oven, as this is the best way to heat sterilize these materials without damaging them. Dry-heat ovens are capable of reaching the high temperatures required for sterilization while still protecting the material.

d. Clean reusable syringes: Incineration, as this is the most effective way to heat sterilize these materials. Incineration will reach the high temperatures needed to kill all types of microorganisms, and also reduce the materials to ash.

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Auxin in the cytoplasm is in the [Select ] Ô form. It exits through the membrane through [ Select] It leaves the cell pushed by the force(s): [Select] Auxin takes different forms in cytoplasm and interstitial fluid because of differences in [ Select] Ô. This difference is generated primarily by the [ Select] [Select] - K+ channels - concentration gradient - proton pumps - A- (COO-) - channels - pH - charge and concentration - charge - osmotic potential - A (COOH) - A+ (COO+) - cotransporters

Answers

Auxin in the cytoplasm is in the A⁻ (COO⁻) form. It exits through the membrane through channels It leaves the cell pushed by the force(s): concentration gradient. Auxin takes different forms in the cytoplasm and interstitial fluid because of differences in pH. This difference is generated primarily by the charge and concentration options.

Plant hormone: Auxin

Auxin is a plant hormone that plays a crucial role in plant growth and development. It is produced in the apical meristems and transported to other parts of the plant through the phloem. Auxin exists in different forms depending on the environment it is in. In the cytoplasm, it is in the A- (COO-) form due to the slightly acidic pH of the cytoplasm.

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Which is the best definition of a species? Groups of onganisms that look very similar companed to other groups of organisme Organisms that can produce fertile offspring with each other
Organisms that can have sex with each other
Organism that can produce offspring with each other

Answers

The best definition of a species is "Organisms that can produce fertile offspring with each other." This is known as the biological species concept, which defines a species as a group of organisms that can interbreed and produce viable offspring. This means that members of a species are capable of producing offspring that are able to reproduce and continue the species.

While other definitions, such as groups of organisms that look similar or can have sex with each other, may be used to categorize organisms, the ability to produce fertile offspring is the most important factor in determining if organisms belong to the same species.

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T/F Longus ColiConcentrically accelerates cervical flexion, lateral flexion, and ipsilateral rotationEccentrically decelerates cervical extension, lateral flexion, and contralateral rotationIsometrically stabilizes the cervical spine

Answers

The given statement “Longus ColiConcentrically accelerates cervical flexion, lateral flexion, and ipsilateral rotationEccentrically decelerates cervical extension, lateral flexion, and contralateral rotationIsometrically stabilizes the cervical spine” is true because the Longus Coli is a muscle located in the cervical spine that plays a crucial role in the movement and stabilization of the neck.

It is responsible for the following actions:
- Concentrically accelerates cervical flexion, lateral flexion, and ipsilateral rotation: This means that the Longus Coli is actively contracting to produce these movements in the cervical spine.

- Eccentrically decelerates cervical extension, lateral flexion, and contralateral rotation: This means that the Longus Coli is actively lengthening to control or slow down these movements in the cervical spine.

- Isometrically stabilizes the cervical spine: This means that the Longus Coli is actively contracting without any change in length to maintain stability in the cervical spine.

Overall, the Longus Coli plays a crucial role in the movement and stabilization of the cervical spine, making it an important muscle to consider in the assessment and treatment of neck pain and dysfunction.

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You are a scientist designing a new drug that would decrease the production of only one class of macromolecules within a bacteria cell. Which macromolecule class would you select? (carbohydrates, proteins, nucleic acids, lipids)? Why?

Answers

Class of macromolecules known as nucleic acids. This is because nucleic acids are responsible for the storage and expression of genetic information within the cell.

By decreasing the production of nucleic acids, the bacteria would be unable to replicate its DNA and produce the proteins necessary for its survival. This would effectively prevent the bacteria from multiplying and causing further harm to the host. Additionally, targeting the production of nucleic acids would be more specific and less likely to cause unintended harm to other cells or systems within the host.

In summary, the class of macromolecules that I would select to decrease the production of within a bacteria cell would be nucleic acids, as they play a crucial role in the storage and expression of genetic information and are essential for the survival and multiplication of the bacteria.

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Which scenario describes an example of the bottleneck effect?
Cheetahs almost went extinct approximately 10,000 years ago during a mass die‑off of large mammalian species. Very few cheetahs survived, leaving the population with little genetic diversity.
Some of the rare, red‑winged finches from a small island fly to a nearby island to feed. They mate with the native, brown‑winged finches, which results in an increase in the red‑wing allele frequency on the new island.
A mistake during DNA replication causes the offspring of a yellow flowering plant to have blue flowers. The blue flower trait is passed on to successive generations.
In a population of rabbits, some individuals have spotted fur, which makes them more susceptible to predation. The proportion of rabbits that have spots decreases in the population for several generations.

Answers

The scenario that describes an example of the bottleneck effect is the first one: "Cheetahs almost went extinct approximately 10,000 years ago during a mass die‑off of large mammalian species. Very few cheetahs survived, leaving the population with little genetic diversity."

The bottleneck effect occurs when a population experiences a drastic reduction in size, often due to a catastrophic event or environmental change. This results in a decrease in genetic diversity, as only a small number of individuals are left to reproduce and pass on their genes.

In the case of the cheetahs, the mass die-off led to a reduction in the population size, leaving only a few individuals to repopulate the species. As a result, the genetic diversity of the cheetah population was greatly reduced.

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DISCUSSION Based on the data, was your hypothesis supported?
Explain: If your hypothesis was supported, what could be
investigated next? If your hypothesis was not supported, what
should be the new hypothesis ?

Answers

Based on the data, it is possible that my hypothesis was supported. However, it is important to note that just because the data supports the hypothesis, it does not necessarily mean that the hypothesis is correct. Further investigation is needed to confirm or reject the hypothesis.

If my hypothesis was supported, the next step could be to investigate the relationship between the variables in more detail. For example, if my hypothesis was that increasing the amount of sunlight a plant receives will increase its growth rate, I could investigate the specific amount of sunlight that is optimal for the plant's growth.

If my hypothesis was not supported, a new hypothesis should be formulated based on the data. For example, if my hypothesis was that increasing the amount of sunlight a plant receives will increase its growth rate, but the data showed that the plant's growth rate decreased with increased sunlight, my new hypothesis could be that there is an optimal amount of sunlight for the plant's growth, and too much sunlight can actually hinder growth.

In both cases, further investigation and collection of data is necessary to support or reject the new hypothesis.

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For this lab exercise:1. Each group member should survey 10 individuals in an attempt to see how much the generalpublic understands/knows/is concerned about GMOs, and if they support the use of GMOs. Usethe survey in the table at the end of the lab exercise to record to which degree the individualagrees or disagrees with the statements. This table is replicated 10 times at the end of this labexercise for your use. Identify each person as person #1, #2, etc. Read the chapter about DNA,Gene Expression and Biotechnology so you are prepared to answer questions concerning GMOsbefore or during the survey. There are no right or wrong answers to the surveys. Some peoplemay support the use of GMO’s and others may be against – both views are fine.2. After you have completed the surveys, make a chart showing the question number with valuesof 1-5 for each of the 10 questions on the X axis and the number of individuals on the Y axis.Your chart should look like the example that is provided on the next page and should besubmitted electronically to your group. The group leader should incorporate all the data into onechart. You are welcome to use the chart that is included as a template, the numbers in the chartwere randomly generated.3. After the group leader has incorporated all group data, the chart should be available for allgroup members for analysis. After analysis, the group should answer the questions as a group.All group members should contribute to answering the questions. It is important that all groupmembers participate.

Answers

The purpose of this lab exercise is to assess the general public's understanding and opinion about genetically modified organisms (GMOs) by conducting a survey of 10 individuals per group member.

The survey includes 10 questions, each with a scale of 1-5 for the individual to indicate their level of agreement or disagreement with the statement. After the surveys are completed, the data should be compiled into a chart showing the question number on the X axis and the number of individuals on the Y axis. The group leader should incorporate all the data into one chart, which will then be used for analysis by all group members. The group should then answer the questions at the end of the lab exercise as a group, with all members contributing to the answers. The goal of this lab exercise is to gain a better understanding of the general public's knowledge and opinion about GMOs, and to use this information to inform future discussions and decision-making about the use of GMOs.

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a. For the Gram’s stain discuss the chemical basis for it
b. Discuss how it is used in identifying bacteria
c. Describe conjugation and replication in bacteria

Answers

Knowing the Gram stain of a bacterial infection can help guide treatment decisions.

 Conjugation in bacteria is a form of horizontal gene transfer, in which genetic material is transferred from one bacterium to another through a structure called a pilus. This allows for the spread of antibiotic resistance and other traits between bacteria.

Replication in bacteria is a form of vertical gene transfer, in which a bacterium replicates its genetic material and divides into two daughter cells. This allows for the rapid growth and spread of bacterial populations.

What is Gram's stain

Gram's stain is a technique used to differentiate between Gram-positive and Gram-negative bacteria. It is based on the chemical properties of the bacterial cell wall.

Gram-positive bacteria have a thick layer of peptidoglycan in their cell walls, which retains the primary stain (crystal violet) during the staining process. Gram-negative bacteria have a thin layer of peptidoglycan and an outer membrane, which does not retain the primary stain and instead takes up the counterstain (safranin). 

Gram's stain is used in identifying bacteria by allowing for the differentiation between Gram-positive and Gram-negative bacteria. This is important because different types of bacteria require different treatments. For example, Gram-positive bacteria are generally more susceptible to antibiotics than Gram-negative bacteria.

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Plants can produce O2 from H2O despite it being an unfavorable
chemical reaction. How are plants able to do this?

Answers

Plants are able to produce O₂ from H₂O despite it being an unfavorable chemical reaction through the process of photosynthesis. In this process, plants use energy from the sun to convert carbon dioxide and water into glucose and oxygen.

The energy from the sun is used to break the bonds in the water molecules, releasing the oxygen atoms and creating new bonds with the carbon dioxide to form glucose. This process is known as the "light reactions" of photosynthesis. The oxygen produced in this reaction is then released into the atmosphere as a byproduct.

In summary, plants are able to produce O₂ from H₂O through the process of photosynthesis, which involves using energy from the sun to break the bonds in water molecules and create new bonds with carbon dioxide to form glucose and oxygen. The oxygen is then released into the atmosphere as a byproduct of this chemical reaction.

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Hydra is able to perform all the following functions except; A. Photosynthesis B. Feeding C. Movement D. Egestion​

Answers

Answer:

A is the answer

because the hydra is able to perform the rest!

Answer:

please make me brainalist and keep smiling

Explanation:

A. Photosynthesis

State all of the different parasite
stages that can be found in humans infected with:
Trypanosoma cruzi but not found in people infected with
Plasmodium vivax?

Answers

The different parasite stages that can be found in humans infected with Trypanosoma cruzi but not found in people infected with Plasmodium vivax are amastigotes, trypomastigotes, and epimastigotes

The Trypanosoma cruzi is the causative agent of chagas disease. Trypanosoma cruzi parasite has three main stages in its lifecycle that develop within an insect host, which include the epimastigote, metacyclic trypomastigote, and the bloodstream trypomastigote stages. In humans, the Trypanosoma cruzi parasite usually takes place in one of two stages: the trypomastigote or the amastigote.

The Plasmodium vivax, on the other hand, is a causative agent of malaria, the stages in the life cycle of the Plasmodium vivax parasite are sporozoites, merozoites, and gametocytes. The stages that are not found in the people infected with Plasmodium vivax include amastigotes, epimastigotes, and trypomastigotes. The Trypanosoma cruzi parasite has a complex life cycle, which is different from that of the Plasmodium vivax. Chagas disease can be treated with antiparasitic medications, and it can be prevented by controlling insect infestation and reducing contact with triatomine insects. Malaria is a treatable and preventable disease that is caused by Plasmodium parasites that are transmitted through the bite of infected Anopheles mosquitoes.

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Your friend has been on a diet and loses 15 pounds of fat. After studying cellular respiration how can you explain the weight loss, where did the weight go (how was it lost)? Comment/ reply to at leas

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During cellular respiration, the body breaks down fat and converts it into usable energy in the form of ATP (adenosine triphosphate).

The process of breaking down fat involves a series of chemical reactions that release energy in the form of heat and produce carbon dioxide and water as byproducts. These byproducts are then expelled from the body through breathing, sweating, and urination.

Therefore, the weight loss experienced by your friend can be explained by the fact that the fat was broken down into usable energy, and the byproducts of this process were expelled from the body. Essentially, the weight was lost through the release of carbon dioxide and water.

In conclusion, cellular respiration is the process by which the body converts fat into usable energy and releases byproducts, which are then expelled from the body. This process can explain the weight loss experienced by your friend, as the fat was broken down and the byproducts were released from the body.

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T/F Common in CNS, lungs, and lymph nodesSingle, large, thick-walled yeastSurrounded by a non-staining wide gelatinous capsuleMay see budding.

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False. The description provided in the question is of Cryptococcus neoformans, a type of fungus that is not common in the central nervous system (CNS), lungs, and lymph nodes.

This fungus is typically found in soil and bird droppings and can cause infections in people with weakened immune systems. It is characterized by a single, large, thick-walled yeast cell surrounded by a non-staining wide gelatinous capsule and may be seen budding. However, it is not common in the CNS, lungs, and lymph nodes.Cryptococcosis is caused by a fungus known as Cryptococcosis neoformans. The infection may be spread to humans through contact with pigeon droppings or unwashed raw fruit.

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